Applications and Mechanistic Insights Into Intrinsically Self-Healing Polymers With Multifunctional 2D Materials

Chirag R. Ratwani , Kostya S. Novoselov , Amr M. Abdelkader

SusMat ›› 2025, Vol. 5 ›› Issue (4) : e70028

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SusMat ›› 2025, Vol. 5 ›› Issue (4) : e70028 DOI: 10.1002/sus2.70028
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Applications and Mechanistic Insights Into Intrinsically Self-Healing Polymers With Multifunctional 2D Materials

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Abstract

Self-healing (SH) polymeric composites hold the promise of revolutionizing material performance and durability, but the challenge lies in achieving a delicate balance between healing efficiency and mechanical strength. Healing processes typically require dynamic, reversible bonds, which can weaken overall material strength, whereas robust materials rely on strong covalent bonds that resist healing. 2D materials offer a solution by acting as nanofillers that not only improve mechanical properties but also introduce multifunctional benefits like electrical and thermal conductivity, responsiveness to stimuli, and enhanced barrier properties. Depending on their surface chemistry, these materials can either actively participate in the healing process or passively reinforce the polymer matrix. This review examines recent advancements in SH polymer composites enhanced with 2D fillers, exploring how factors like filler type, surface interactions, and loading levels impact both healing efficiency and mechanical strength. It compares the contributions of various 2D materials, identifying similarities and critical differences in their roles within polymer matrices. The article also highlights the need for standardized testing and advanced characterization techniques to better understand interfacial properties and healing mechanisms. By addressing current knowledge gaps and proposing future research directions, this review provides a comprehensive resource for advancing SH polymer systems, particularly in the integration of 2D materials for applications ranging from aerospace to electronics.

Keywords

2D materials / multifunctional composites / polymer nanocomposite / self-healing polymers / smart materials

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Chirag R. Ratwani, Kostya S. Novoselov, Amr M. Abdelkader. Applications and Mechanistic Insights Into Intrinsically Self-Healing Polymers With Multifunctional 2D Materials. SusMat, 2025, 5(4): e70028 DOI:10.1002/sus2.70028

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References

[1]

Z. P. Bažant and M. Jirásek, “Nonlocal Integral Formulations of Plasticity and Damage: Survey of Progress,” Journal of Engineering Mechanics 128, no. 11 (2002): 1119-1149.

[2]

Y. M. Malinskii, V. V. Prokopenko, N. A. Ivanova, and V. A. Kargin, “Investigation of Self-Healing of Cracks in Polymers,” Polymer Mechanics 6, no. 2 (1970): 240-244.

[3]

M. D. Ellul and A. N. Gent, “The Role of Molecular Diffusion in the Adhesion of Elastomers,” Journal of Polymer Science: Polymer Physics Edition 22, no. 11 (1984): 1953-1968.

[4]

C. Dry, “Passive Tuneable Fibers and Matrices,” International Journal of Modern Physics B 06, no. 15n16 (1992): 2763-2771.

[5]

C. Dry and N. Sottos, “Passive Smart Self-Repair in Polymer Matrix Composite Materials,” in 1993 North American Conference on Smart Structures and Materials. (SPIE, 1993).

[6]

M. R. Kessler and S. R. White, “Self-Activated Healing of Delamination Damage in Woven Composites,” Composites Part A: Applied Science and Manufacturing 32, no. 5 (2001): 683-699.

[7]

S. R. White, N. R. Sottos, P. H. Geubelle, et al., “Autonomic Healing of Polymer Composites,” Nature 409, no. 6822 (2001): 794-797.

[8]

P. Bertrand, A. Jonas, A. Laschewsky, and R. Legras, “Ultrathin Polymer Coatings by Complexation of Polyelectrolytes at Interfaces: Suitable Materials, Structure and Properties,” Macromolecular Rapid Communications 21, no. 7 (2000): 319-348.

[9]

X. Chen, M. A. Dam, K. Ono, et al., “A Thermally Re-Mendable Cross-Linked Polymeric Material,” Science 295, no. 5560 (2002): 1698-1702.

[10]

P. Cordier, F. Tournilhac, C. Soulié-Ziakovic, and L. Leibler, “Self-Healing and Thermoreversible Rubber From Supramolecular Assembly,” Nature 451, no. 7181 (2008): 977-980.

[11]

A. Zarepour, S. Ahmadi, N. Rabiee, A. Zarrabi, and S. Iravani, “Self-Healing MXene- and Graphene-Based Composites: Properties and Applications,” Nano-Micro Letters 15, no. 1 (2023): 100.

[12]

D. Palumbo and R. De Finis, “Fatigue and Fracture Behavior of Composite Materials,” Materials 16, no. 23 (2023): 7292.

[13]

D. G. Papageorgiou, Z. Li, M. Liu, I. A. Kinloch, and R. J. Young, “Mechanisms of Mechanical Reinforcement by Graphene and Carbon Nanotubes in Polymer Nanocomposites,” Nanoscale 12, no. 4 (2020): 2228-2267.

[14]

Y. Peng, S. Gu, Q. Wu, Z. Xie, and J. Wu, “High-Performance Self-Healing Polymers,” Accounts of Materials Research 4, no. 4 (2023): 323-333.

[15]

R. S. Srivastav and A. P. More, “A Comprehensive Review of Self-Healing Polymers: Mechanisms, Types, and Industry Implications,” Polymers for Advanced Technologies 36, no. 2 (2025): e70092.

[16]

H. Yue, Z. Wang, and Y. Zhen, “Recent Advances of Self-Healing Electronic Materials Applied in Organic Field-Effect Transistors,” ACS Omega 7, no. 22 (2022): 18197-18205.

[17]

S. Utrera-Barrios, R. Verdejo, and M. Á. López-Manchado, “Self-Healing Elastomers: A Sustainable Solution for Automotive Applications,” European Polymer Journal 190 (2023): 112023.

[18]

A. J. R. Amaral and G. Pasparakis, “Stimuli Responsive Self-Healing Polymers: Gels, Elastomers and Membranes,” Polymer Chemistry 8, no. 42 (2017): 6464-6484.

[19]

M. Yamaguchi, R. Maeda, R. Kobayashi, T. Wada, S. Ono, and S. Nobukawa, “Autonomic Healing and Welding by Interdiffusion of Dangling Chains in a Weak Gel,” Polymer International 61, no. 1 (2012): 9-16.

[20]

Y. Yang, D. Davydovich, C. C. Hornat, X. Liu, and M. W. Urban, “Leaf-Inspired Self-Healing Polymers,” Chemistry 4, no. 8 (2018): 1928-1936.

[21]

S. Gao, J. Ding, W. Wang, and J. Lu, “MXene Based Flexible Composite Phase Change Material With Shape Memory, Self-Healing and Flame Retardant for Thermal Management,” Composites Science and Technology 234 (2023): 109945.

[22]

R. Mo, F. Zhang, X. Sheng, and X. Zhang, “The Polymer Interdiffusion in Disulfide Dynamic Crosslinked Latex Films,” Chemical Engineering Science 284 (2024): 119536.

[23]

D. Y. Zhu, M. Z. Rong, and M. Q. Zhang, “Self-Healing Polymeric Materials Based on Microencapsulated Healing Agents: From Design to Preparation,” Progress in Polymer Science 49-50 (2015): 175-220.

[24]

M. W. Lee, S. An, S. S. Yoon, and A. L. Yarin, “Advances in Self-Healing Materials Based on Vascular Networks With Mechanical Self-Repair Characteristics,” Advances in Colloid and Interface Science 252 (2018): 21-37.

[25]

S. Utrera-Barrios, R. Verdejo, M. A. López-Manchado, and M. Hernández Santana, “Evolution of Self-Healing Elastomers, From Extrinsic to Combined Intrinsic Mechanisms: A Review,” Materials Horizons 7, no. 11 (2020): 2882-2902.

[26]

M. Goyal, S. N. Agarwal, and N. Bhatnagar, “A Review on Self-Healing Polymers for Applications in Spacecraft and Construction of Roads,” Journal of Applied Polymer Science 139, no. 37 (2022): e52816.

[27]

B. Li, P.-F. Cao, T. Saito, and A. P. Sokolov, “Intrinsically Self-Healing Polymers: From Mechanistic Insight to Current Challenges,” Chemical Reviews 123, no. 2 (2023): 701-735.

[28]

C. R. Ratwani, A. R. Kamali, and A. M. Abdelkader, “Self-Healing by Diels-Alder Cycloaddition in Advanced Functional Polymers: A Review,” Progress in Materials Science 131 (2023): 101001.

[29]

H. Park, T. Kang, H. Kim, J.-C. Kim, Z. Bao, and J. Kang, “Toughening Self-Healing Elastomer Crosslinked by Metal-Ligand Coordination Through Mixed Counter Anion Dynamics,” Nature Communications 14, no. 1 (2023): 5026.

[30]

H. Xu, N. Suzuki, A. Takahashi, et al., “Structural Reorganization and Crack-Healing Properties of Hydrogels Based on Dynamic Diselenide Linkages,” Science and Technology of Advanced Materials 21, no. 1 (2020): 450-460.

[31]

N. Suzuki, A. Takahashi, T. Ohishi, R. Goseki, and H. Otsuka, “Enhancement of the Stimuli-Responsiveness and Photo-Stability of Dynamic Diselenide Bonds and Diselenide-Containing Polymers by Neighboring Aromatic Groups,” Polymer 154 (2018): 281-290.

[32]

R. Chang, X. Wang, X. Li, H. An, and J. Qin, “Self-Activated Healable Hydrogels With Reversible Temperature Responsiveness,” ACS Applied Materials & Interfaces 8, no. 38 (2016): 25544-25551.

[33]

X. Huang, X. Wang, C. Shi, Y. Liu, and Y. Wei, “Research on Synthesis and Self-Healing Properties of Interpenetrating Network Hydrogels Based on Reversible Covalent and Reversible Non-Covalent Bonds,” Journal of Polymer Research 28, no. 1 (2021): 1.

[34]

C. Mo, L. Xiang, and Y. Chen, “Advances in Injectable and Self-Healing Polysaccharide Hydrogel Based on the Schiff Base Reaction,” Macromolecular Rapid Communications 42, no. 10 (2021): 2100025.

[35]

Z. Yang, F. Wang, C. Zhang, et al., “Bio-Inspired Self-Healing Polyurethanes With Multiple Stimulus Responsiveness,” Polymer Chemistry 10, no. 24 (2019): 3362-3370.

[36]

S. Wang, Y. Yang, H. Ying, et al., “Self-Healable, and Highly Malleable Poly(Urethane-Urea)s With Improved Thermal and Mechanical Performances,” ACS Applied Materials & Interfaces 12, no. 31 (2020): 35403-35414.

[37]

A. V. Menon, B. Choudhury, G. Madras, and S. Bose, “Trigger-Free′ Self-Healable Electromagnetic Shielding Material Assisted by Co-Doped Graphene Nanostructures,” Chemical Engineering Journal 382 (2020): 122816.

[38]

Y. Yang and M. W. Urban, “Self-Healing Polymeric Materials,” Chemical Society Reviews 42, no. 17 (2013): 7446-7467.

[39]

X. Shen, Q. Zheng, and J.-K. Kim, “Rational Design of Two-Dimensional Nanofillers for Polymer Nanocomposites Toward Multifunctional Applications,” Progress in Materials Science 115 (2021): 100708.

[40]

F. Sahraeeazartamar, S. Terryn, E. Roels, et al., “Effect of Secondary Particles on Self-Healing and Electromechanical Properties of Polymer Composites Based on Carbon Black and a Diels-Alder Network,” ACS Applied Polymer Materials 5, no. 10 (2023): 7813-7830.

[41]

C. R. Ratwani, K. Z. Donato, S. Grebenchuk, A. Mija, K. S. Novoselov, and A. M. Abdelkader, “Enhanced Self-Healing in Dual Network Entangled Hydrogels by Macromolecular Architecture and Alignment of Surface Functionalized hBN Nanosheets,” Advanced Materials Interfaces 12, no. 6 (2024): 2400691.

[42]

Z. Wang, L. Yuan, G. Liang, and A. Gu, “Mechanically Durable and Self-Healing Super-Hydrophobic Coating With Hierarchically Structured KH570 Modified SiO2-Decorated Aligned Carbon Nanotube Bundles,” Chemical Engineering Journal 408 (2021): 127263.

[43]

C. R. Ratwani, S. Zhao, Y. Huang, M. Hadfield, A. R. Kamali, and A. M. Abdelkader, “Surface Modification of Transition Metal Dichalcogenide Nanosheets for Intrinsically Self-Healing Hydrogels With Enhanced Mechanical Properties,” Small 19, no. 22 (2023): 2207081.

[44]

C. Zhu, Y. Fu, C. Liu, et al., “Carbon Dots as Fillers Inducing Healing/Self-Healing and Anticorrosion Properties in Polymers,” Advanced Materials 29, no. 32 (2017): 1701399.

[45]

A. Cohades, C. Branfoot, S. Rae, I. Bond, and V. Michaud, “Progress in Self-Healing Fiber-Reinforced Polymer Composites,” Advanced Materials Interfaces 5, no. 17 (2018): 1800177.

[46]

P. Shen, Z. Jiang, J. Viktorova, et al., “Conductive and Self-Healing Carbon Nanotube-Polymer Composites for Mechanically Strong Smart Materials,” ACS Applied Nano Materials 6, no. 2 (2023): 986-994.

[47]

N. Baig, “Two-Dimensional Nanomaterials: A Critical Review of Recent Progress, Properties, Applications, and Future Directions,” Composites Part A: Applied Science and Manufacturing 165 (2023): 107362.

[48]

V. Shanmugam, R. A. Mensah, K. Babu, et al., “A Review of the Synthesis, Properties, and Applications of 2D Materials,” Particle & Particle Systems Characterization 39, no. 6 (2022): 2200031.

[49]

P. Kumbhakar, J. S. Jayan, A. Sreedevi Madhavikutty, et al., “Prospective Applications of Two-Dimensional Materials Beyond Laboratory Frontiers: A Review,” Iscience 26, no. 5 (2023): 106671.

[50]

H. T. Zheng, Y. C. Zhang, X. He, H. H. Liu, A. Y. Chen, and X. F. Xie, “Infrared-Light-Driven Self-Healing MoS2/Polyvinyl Alcohol Hydrogel With Simultaneous Enhancement of Strength and Ductility,” Journal of Alloys and Compounds 918 (2022): 165801.

[51]

S. Parihar and B. Gaur, “High Performance Self-Healing Polymeric Nanocomposite Coatings,” Progress in Organic Coatings 182 (2023): 107626.

[52]

K. S. Novoselov, A. K. Geim, S. V. Morozov, et al., “Electric Field Effect in Atomically Thin Carbon Films,” Science 306, no. 5696 (2004): 666-669.

[53]

A. K. Geim and K. S. Novoselov, “The Rise of Graphene,” Nature Materials 6, no. 3 (2007): 183-191.

[54]

K. S. Novoselov, V. I. Fal′ko, L. Colombo, P. R. Gellert, M. G. Schwab, and K. Kim, “A Roadmap for Graphene,” Nature 490, no. 7419 (2012): 192-200.

[55]

M. F. El-Kady, Y. Shao, and R. B. Kaner, “Graphene for Batteries, Supercapacitors and Beyond,” Nature Reviews Materials 1, no. 7 (2016): 16033.

[56]

A. Boretti, S. Al-Zubaidy, M. Vaclavikova, M. Al-Abri, S. Castelletto, and S. Mikhalovsky, “Outlook for Graphene-Based Desalination Membranes,” Npj Clean Water 1, no. 1 (2018): 5.

[57]

D. G. Papageorgiou, I. A. Kinloch, and R. J. Young, “Mechanical Properties of Graphene and Graphene-Based Nanocomposites,” Progress in Materials Science 90 (2017): 75-127.

[58]

M. A. Krishnan, K. S. Aneja, A. Shaikh, et al., “Graphene-Based Anticorrosive Coatings for Copper,” RSC Advances 8, no. 1 (2018): 499-507.

[59]

J. H. Choi, J. Lee, M. Byeon, T. E. Hong, H. Park, and C. Y. Lee, “Graphene-Based Gas Sensors With High Sensitivity and Minimal Sensor-to-Sensor Variation,” ACS Applied Nano Materials 3, no. 3 (2020): 2257-2265.

[60]

Y. Jiang, P. Biswas, and J. D. Fortner, “A Review of Recent Developments in Graphene-Enabled Membranes for Water Treatment,” Environmental Science: Water Research & Technology 2, no. 6 (2016): 915-922.

[61]

S. Afroj, S. Tan, A. M. Abdelkader, K. S. Novoselov, and N. Karim, “Highly Conductive, Scalable, and Machine Washable Graphene-Based E-Textiles for Multifunctional Wearable Electronic Applications,” Advanced Functional Materials 30, no. 23 (2020): 2000293.

[62]

C. R. Ratwani and T. Barkan, “Human Trials Suggest Graphene Inhalation May Be Safe,” Graphene and 2D Materials 9, no. 1-2 (2024): 3-4.

[63]

T. Barkan, C. R. Ratwani, D. Johnson, K. Thodkar, and C. Hill, “Mapping the Landscape for Graphene Commercialization,” Nature Reviews Physics 6, no. 11 (2024): 646-647.

[64]

V. Georgakilas, M. Otyepka, A. B. Bourlinos, et al., “Functionalization of Graphene: Covalent and Non-Covalent Approaches, Derivatives and Applications,” Chemical Reviews 112, no. 11 (2012): 6156-6214.

[65]

T. Kuilla, S. Bhadra, D. Yao, N. H. Kim, S. Bose, and J. H. Lee, “Recent Advances in Graphene Based Polymer Composites,” Progress in Polymer Science 35, no. 11 (2010): 1350-1375.

[66]

G. Li, P. Xiao, S. Hou, and Y. Huang, “Graphene Based Self-Healing Materials,” Carbon 146 (2019): 371-387.

[67]

C. Backes, A. M. Abdelkader, C. Alonso, et al., “Production and Processing of Graphene and Related Materials,” 2D Materials 7, no. 2 (2020): 022001.

[68]

C. Kim, H. Ejima, and N. Yoshie, “Polymers With Autonomous Self-Healing Ability and Remarkable Reprocessability Under Ambient Humidity Conditions,” Journal of Materials Chemistry A 6, no. 40 (2018): 19643-19652.

[69]

S. Das, F. Irin, L. Ma, S. K. Bhattacharia, R. C. Hedden, and M. J. Green, “Rheology and Morphology of Pristine Graphene/Polyacrylamide Gels,” ACS Applied Materials & Interfaces 5, no. 17 (2013): 8633-8640.

[70]

H.-P. Cong, P. Wang, and S.-H. Yu, “Stretchable and Self-Healing Graphene Oxide-Polymer Composite Hydrogels: A Dual-Network Design,” Chemistry of Materials 25, no. 16 (2013): 3357-3362.

[71]

C. Xu, X. Yu, Y. Liu, X. Zhang, and S. Liu, “Versatile Graphene Oxide Hybrid Supramolecular Hydrogel Driven by Host-Guest Interaction Showing Excellent Mechanical and Sensing Properties and Photothermal Responsiveness,” ACS Applied Polymer Materials 5, no. 9 (2023): 7375-7389.

[72]

N. I. Khan, S. Halder, and J. Wang, “Diels-Alder Based Epoxy Matrix and Interfacial Healing of Bismaleimide Grafted GNP Infused Hybrid Nanocomposites,” Polymer Testing 74 (2019): 138-151.

[73]

A. Hale, C. W. Macosko, and H. E. Bair, “Glass Transition Temperature as a Function of Conversion in Thermosetting Polymers,” Macromolecules 24, no. 9 (1991): 2610-2621.

[74]

Q. Yang, Z. Zhang, X. Gong, et al., “Thermal Conductivity of Graphene-Polymer Composites: Implications for Thermal Management,” Heat and Mass Transfer 56, no. 6 (2020): 1931-1945.

[75]

C. Cai, Y. Zhang, X. Zou, et al., “Rapid Self-Healing and Recycling of Multiple-Responsive Mechanically Enhanced Epoxy Resin/Graphene Nanocomposites,” RSC Advances 7, no. 73 (2017): 46336-46343.

[76]

C. Cai, Y. Zhang, M. Li, et al., “Multiple-Responsive Shape Memory Polyacrylonitrile/Graphene Nanocomposites With Rapid Self-Healing and Recycling Properties,” RSC Advances 8, no. 3 (2018): 1225-1231.

[77]

C. Lin, D. Sheng, X. Liu, et al., “A Self-Healable Nanocomposite Based on Dual-Crosslinked Graphene Oxide/Polyurethane,” Polymer 127 (2017): 241-250.

[78]

J. Li, G. Zhang, L. Deng, et al., “In Situ Polymerization of Mechanically Reinforced, Thermally Healable Graphene Oxide/Polyurethane Composites Based on Diels-Alder Chemistry,” Journal of Materials Chemistry A 2, no. 48 (2014): 20642-20649.

[79]

J. Li, Q. Liu, D. Ho, et al., “Three-Dimensional Graphene Structure for Healable Flexible Electronics Based on Diels-Alder Chemistry,” ACS Applied Materials & Interfaces 10, no. 11 (2018): 9727-9735.

[80]

M. Hernández, M. M. Bernal, A. M. Grande, N. Zhong, S. van der Zwaag, and S. J. García, “Effect of Graphene Content on the Restoration of Mechanical, Electrical and Thermal Functionalities of a Self-Healing Natural Rubber,” Smart Materials and Structures 26, no. 8 (2017): 085010.

[81]

X. Xiao, T. Xie, and Y.-T. Cheng, “Self-Healable Graphene Polymer Composites,” Journal of Materials Chemistry 20, no. 17 (2010): 3508-3514.

[82]

S. Liu, Y. Lin, Y. Wei, S. Chen, J. Zhu, and L. Liu, “A High Performance Self-Healing Strain Sensor With Synergetic Networks of Poly(ɛ-Caprolactone) Microspheres, Graphene and Silver Nanowires,” Composites Science and Technology 146 (2017): 110-118.

[83]

J. Liu, G. Song, C. He, and H. Wang, “Self-Healing in Tough Graphene Oxide Composite Hydrogels,” Macromolecular Rapid Communications 34, no. 12 (2013): 1002-1007.

[84]

M. Zhong, Y.-T. Liu, and X.-M. Xie, “Self-Healable, Super Tough Graphene Oxide-Poly(Acrylic Acid) Nanocomposite Hydrogels Facilitated by Dual Cross-Linking Effects Through Dynamic Ionic Interactions,” Journal of Materials Chemistry B 3, no. 19 (2015): 4001-4008.

[85]

Y.-G. Luan, X.-A. Zhang, S.-L. Jiang, J.-H. Chen, and Y.-F. Lyu, “Self-Healing Supramolecular Polymer Composites by Hydrogen Bonding Interactions Between Hyperbranched Polymer and Graphene Oxide,” Chinese Journal of Polymer Science 36, no. 5 (2018): 584-591.

[86]

H. Tu, M. Zhou, Y. Gu, and Y. Gu, “Conductive, Self-Healing, and Repeatable Graphene/Carbon Nanotube/Polyurethane Flexible Sensor Based on Diels-Alder Chemothermal Drive,” Composites Science and Technology 225 (2022): 109476.

[87]

J. Li, G. Zhang, R. Sun, and C.-P. Wong, “A Covalently Cross-Linked Reduced Functionalized Graphene Oxide/Polyurethane Composite Based on Diels-Alder Chemistry and Its Potential Application in Healable Flexible Electronics,” Journal of Materials Chemistry C 5, no. 1 (2017): 220-228.

[88]

C. Lin, D. Sheng, X. Liu, et al., “NIR Induced Self-Healing Electrical Conductivity Polyurethane/Graphene Nanocomposites Based on Diels-Alder Reaction,” Polymer 140 (2018): 150-157.

[89]

L. Huang, N. Yi, Y. Wu, et al., “Multichannel and Repeatable Self-Healing of Mechanical Enhanced Graphene-Thermoplastic Polyurethane Composites,” Advanced Materials 25, no. 15 (2013): 2224-2228.

[90]

C. Hou, Y. Duan, Q. Zhang, H. Wang, and Y. Li, “Bio-Applicable and Electroactive Near-Infrared Laser-Triggered Self-Healing Hydrogels Based on Graphene Networks,” Journal of Materials Chemistry 22, no. 30 (2012): 14991-14996.

[91]

E. Zhang, T. Wang, L. Zhao, W. Sun, X. Liu, and Z. Tong, “Fast Self-Healing of Graphene Oxide-Hectorite Clay-Poly(N,N-Dimethylacrylamide) Hybrid Hydrogels Realized by Near-Infrared Irradiation,” ACS Applied Materials & Interfaces 6, no. 24 (2014): 22855-22861.

[92]

J. T. Kim, B. K. Kim, E. Y. Kim, S. H. Kwon, and H. M. Jeong, “Synthesis and Properties of Near IR Induced Self-Healable Polyurethane/Graphene Nanocomposites,” European Polymer Journal 49, no. 12 (2013): 3889-3896.

[93]

S. Wu, J. Li, G. Zhang, R. Sun, and C. Wong, “High Mechanical Strength and High Dielectric Graphene/Polyuthane Composites Healded by Near Infrared Laser,” in 2016 17th International Conference on Electronic Packaging Technology (ICEPT), (Wuhan, China, 2016): 157-161.

[94]

L. Chen, L. Si, F. Wu, S. Y. Chan, P. Yu, and B. Fei, “Electrical and Mechanical Self-Healing Membrane Using Gold Nanoparticles as Localized “Nano-Heaters”,” Journal of Materials Chemistry C 4, no. 42 (2016): 10018-10025.

[95]

S. Thakur and N. Karak, “Tuning of Sunlight-Induced Self-Cleaning and Self-Healing Attributes of an Elastomeric Nanocomposite by Judicious Compositional Variation of the TiO2-Reduced Graphene Oxide Nanohybrid,” Journal of Materials Chemistry A 3, no. 23 (2015): 12334-12342.

[96]

G. Li, P. Xiao, S. Hou, and Y. Huang, “Rapid and Efficient Polymer/Graphene Based Multichannel Self-Healing Material via Diels-Alder Reaction,” Carbon 147 (2019): 398-407.

[97]

C. Wang, N. Liu, R. Allen, et al., “A Rapid and Efficient Self-Healing Thermo-Reversible Elastomer Crosslinked With Graphene Oxide,” Advanced Materials 25, no. 40 (2013): 5785-5790.

[98]

H. Yu, C. Chen, J. Sun, et al., “Highly Thermally Conductive Polymer/Graphene Composites With Rapid Room-Temperature Self-Healing Capacity,” Nano-Micro Letters 14, no. 1 (2022): 135.

[99]

J. Li, Q. Feng, J. Cui, et al., “Self-Assembled Graphene Oxide Microcapsules in Pickering Emulsions for Self-Healing Waterborne Polyurethane Coatings,” Composites Science and Technology 151 (2017): 282-290.

[100]

L. Zhang, K. Wu, Y. Chen, R. Liu, and J. Luo, “The Preparation of Linseed Oil Loaded Graphene/Polyaniline Microcapsule via Emulsion Template Method for Self-Healing Anticorrosion Coatings,” Colloids and Surfaces A: Physicochemical and Engineering Aspects 651 (2022): 129771.

[101]

J. Li, Z. Tao, J. Cui, S. Shen, and H. Qiu, “Facile Fabrication of Dual Functional Graphene Oxide Microcapsules Carrying Corrosion Inhibitor and Encapsulating Self-Healing Agent,” Polymers 14, no. 19, (2022): 4067.

[102]

F. Yu, H. Feng, J. Leng, et al., “Self-Assembled Graphene Oxide Microcapsules in Pickering Emulsions for Photo-Responsive Self-Healing Epoxy Coatings,” Journal of Applied Polymer Science 139, no. 30 (2022): e52685.

[103]

E. D'Elia, S. Barg, N. Ni, V. G. Rocha, and E. Saiz, “Self-Healing Graphene-Based Composites With Sensing Capabilities,” Advanced Materials 27, no. 32 (2015): 4788-4794.

[104]

Y. Zhu, C. Yao, J. Ren, C. Liu, and L. Ge, “Graphene Improved Electrochemical Property in Self-Healing Multilayer Polyelectrolyte Film,” Colloids and Surfaces A: Physicochemical and Engineering Aspects 465 (2015): 26-31.

[105]

F. Fan, C. Zhou, X. Wang, and J. Szpunar, “Layer-by-Layer Assembly of a Self-Healing Anticorrosion Coating on Magnesium Alloys,” ACS Applied Materials & Interfaces 7, no. 49 (2015): 27271-27278.

[106]

H. Cheng, Y. Huang, Q. Cheng, G. Shi, L. Jiang, and L. Qu, “Self-Healing Graphene Oxide Based Functional Architectures Triggered by Moisture,” Advanced Functional Materials 27, no. 42 (2017): 1703096.

[107]

S. Yang, J. Liu, F. Pan, et al., “Fabrication of Self-Healing and Hydrophilic Coatings From Liquid-Like Graphene@SiO2 Hybrids,” Composites Science and Technology 136 (2016): 133-144.

[108]

P. Yang, S. Ghosh, T. Xia, et al., “Joule Heating and Mechanical Properties of Epoxy/Graphene Based Aerogel Composite,” Composites Science and Technology 218 (2022): 109199.

[109]

A. Tarhini and A. R. Tehrani-Bagha, “Advances in Preparation Methods and Conductivity Properties of Graphene-Based Polymer Composites,” Applied Composite Materials 30, no. 6 (2023): 1737-1762.

[110]

Y. Liu, C. Liang, A. Wei, et al., “Solder-Free Electrical Joule Welding of Macroscopic Graphene Assemblies,” Materials Today Nano 3 (2018): 1-8.

[111]

Z. Xiang, L. Zhang, Y. Li, T. Yuan, W. Zhang, and J. Sun, “Reduced Graphene Oxide-Reinforced Polymeric Films With Excellent Mechanical Robustness and Rapid and Highly Efficient Healing Properties,” ACS Nano 11, no. 7 (2017): 7134-7141.

[112]

L. Valentini, S. Bittolo Bon, S. Signetti, and N. M. Pugno, “Graphene-Based Bionic Composites With Multifunctional and Repairing Properties,” ACS Applied Materials & Interfaces 8, no. 12 (2016): 7607-7612.

[113]

N. Kargarfard, N. Diedrich, H. Rupp, D. Döhler, and W. H. Binder, “Improving Kinetics of “Click-Crosslinking” for Self-Healing Nanocomposites by Graphene-Supported Cu-Nanoparticles,” Polymers 10, no. 1 (2018): 17.

[114]

S. Rana, D. Döhler, A. S. Nia, M. Nasir, M. Beiner, and W. H. Binder, ““Click”-Triggered Self-Healing Graphene Nanocomposites,” Macromolecular Rapid Communications 37, no. 21 (2016): 1715-1722.

[115]

R. P. Feynman, “There's Plenty of Room at the Bottom,” Engineering and Science 23, no. 5 (1959): 22-36.

[116]

A. Gupta, T. Sakthivel, and S. Seal, “Recent Development in 2D Materials Beyond Graphene,” Progress in Materials Science 73 (2015): 44-126.

[117]

N. R. Glavin, R. Rao, V. Varshney, et al., “Emerging Applications of Elemental 2D Materials,” Advanced Materials 32, no. 7 (2020): 1904302.

[118]

K. S. Novoselov, A. Mishchenko, A. Carvalho, and A. H. Castro Neto, “2D Materials and van der Waals Heterostructures,” Science 353, no. 6298 (2016): aac9439.

[119]

Y. J. Tan, G. J. Susanto, H. P. Anwar Ali, and B. C. K. Tee, “Progress and Roadmap for Intelligent Self-Healing Materials in Autonomous Robotics,” Advanced Materials 33, no. 19 (2021): 2002800.

[120]

T. Chang, F. Panhwar, and G. Zhao, “Flourishing Self-Healing Surface Materials: Recent Progresses and Challenges,” Advanced Materials Interfaces 7, no. 6 (2020): 1901959.

[121]

S. Manzeli, D. Ovchinnikov, D. Pasquier, O. V. Yazyev, and A. Kis, “2D Transition Metal Dichalcogenides,” Nature Reviews Materials 2, no. 8 (2017): 17033.

[122]

T. Rao, H. Wang, Y.-J. Zeng, Z. Guo, H. Zhang, and W. Liao, “Phase Transitions and Water Splitting Applications of 2D Transition Metal Dichalcogenides and Metal Phosphorous Trichalcogenides,” Advanced Science 8, no. 10 (2021): 2002284.

[123]

V. Sorkin, H. Pan, H. Shi, S. Y. Quek, and Y. W. Zhang, “Nanoscale Transition Metal Dichalcogenides: Structures, Properties, and Applications,” Critical Reviews in Solid State and Materials Science 39, no. 5 (2014): 319-367.

[124]

Q. Yun, L. Li, Z. Hu, Q. Lu, B. Chen, and H. Zhang, “Layered Transition Metal Dichalcogenide-Based Nanomaterials for Electrochemical Energy Storage,” Advanced Materials 32, no. 1 (2020): 1903826.

[125]

S. Barua, H. S. Dutta, S. Gogoi, R. Devi, and R. Khan, “Nanostructured MoS2-Based Advanced Biosensors: A Review,” ACS Applied Nano Materials 1, no. 1 (2018): 2-25.

[126]

A. Joseph, A. S. Vijayan, C. M. Shebeeb, K. S. Akshay, K. P. John Mathew, and V. Sajith, “A Review on Tailoring the Corrosion and Oxidation Properties of MoS2-Based Coatings,” Journal of Materials Chemistry A 11, no. 7 (2023): 3172-3209.

[127]

J.-H. Lee, J. Y. Park, E. B. Cho, et al., “Reliable Piezoelectricity in Bilayer WSe2 for Piezoelectric Nanogenerators,” Advanced Materials 29, no. 29 (2017): 1606667.

[128]

K. F. Mak and J. Shan, “Photonics and Optoelectronics of 2D Semiconductor Transition Metal Dichalcogenides,” Nature Photonics 10, no. 4 (2016): 216-226.

[129]

T. Mueller and E. Malic, “Exciton Physics and Device Application of Two-Dimensional Transition Metal Dichalcogenide Semiconductors,” Npj 2D Materials and Applications 2, no. 1 (2018): 29.

[130]

M. Chhowalla, D. Jena, and H. Zhang, “Two-Dimensional Semiconductors for Transistors,” Nature Reviews Materials 1, no. 11 (2016): 16052.

[131]

K. F. Mak and J. Shan, “Semiconductor Moiré Materials,” Nature Nanotechnology 17, no. 7 (2022): 686-695.

[132]

H. Gong, C. Yu, L. Zhang, G. Xie, D. Guo, and J. Luo, “Intelligent Lubricating Materials: A Review,” Composites Part B: Engineering 202 (2020): 108450.

[133]

T. B. Yaqub, T. Vuchkov, S. Bruyère, J.-F. Pierson, and A. Cavaleiro, “A Revised Interpretation of the Mechanisms Governing Low Friction Tribolayer Formation in Alloyed-TMD Self-Lubricating Coatings,” Applied Surface Science 571 (2022): 151302.

[134]

V. Vitale, K. Atalar, A. A. Mostofi, and J. Lischner, “Flat Band Properties of Twisted Transition Metal Dichalcogenide Homo- and Heterobilayers of MoS2, MoSe2, WS2 and WSe2,” 2D Materials 8, no. 4 (2021): 045010.

[135]

J. He, K. Hummer, and C. Franchini, “Stacking Effects on the Electronic and Optical Properties of Bilayer Transition Metal Dichalcogenides MoS2, MoSe2, WS2 and WSe2,” Physical Review B 89, no. 7 (2014): 075409.

[136]

Q. H. Wang, K. Kalantar-Zadeh, A. Kis, J. N. Coleman, and M. S. Strano, “Electronics and Optoelectronics of Two-Dimensional Transition Metal Dichalcogenides,” Nature Nanotechnology 7, no. 11 (2012): 699-712.

[137]

M. J. G. Guimarey, A. M. Abdelkader, M. J. P. Comuñas, et al., “Comparison Between Thermophysical and Tribological Properties of Two Engine Lubricant Additives: Electrochemically Exfoliated Graphene and Molybdenum Disulfide Nanoplatelets,” Nanotechnology 32, no. 2 (2021): 025701.

[138]

J. Zhao, Y. He, Y. Wang, W. Wang, L. Yan, and J. Luo, “An Investigation on the Tribological Properties of Multilayer Graphene and MoS2 Nanosheets as Additives Used in Hydraulic Applications,” Tribology International 97 (2016): 14-20.

[139]

H. Yagoda and H. A. Fales, “The Separation and Determination of Tungsten and Molybdenum,” Journal of the American Chemical Society 58, no. 8 (1936): 1494-1501.

[140]

F. T. Eggertsen and R. M. Roberts, “Molybdenum Disulfide of High Surface Area,” Journal of Physical Chemistry 63, no. 11 (1959): 1981-1982.

[141]

L. Arutyunyan and E. K. Khurshudyan, “Synthesis of Molybdenum Disulfide From Sulfomolybdate Solutions at High Temperatures,” Geochemistry International 3 (1966): 479-485.

[142]

S. Das, J. A. Robinson, M. Dubey, H. Terrones, and M. Terrones, “Beyond Graphene: Progress in Novel Two-Dimensional Materials and van der Waals Solids,” Annual Review of Materials Research 45, no. 1 (2015): 1-27.

[143]

A. Ben-Smith, S. H. Choi, S. Boandoh, et al., “Photo-Oxidative Crack Propagation in Transition Metal Dichalcogenides,” ACS Nano 18, no. 4 (2024): 3125-3133.

[144]

A. Sajedi-Moghaddam, E. Saievar-Iranizad, and M. Pumera, “Two-Dimensional Transition Metal Dichalcogenide/Conducting Polymer Composites: Synthesis and Applications,” Nanoscale 9, no. 24 (2017): 8052-8065.

[145]

L. Bai, Y. Lei, H. Huang, Y. Liang, and H. Yang, “Flexible Light-Responsive Self-Healing Polymeric Composite Film Based on Two-Dimensional MoS2-Organic Halide Perovskite Longitudinal Heterostructure,” Chemical Engineering Journal 425 (2021): 131450.

[146]

Z. Zohreband, M. Adeli, and A. Zebardasti, “Self-Healable and Flexible Supramolecular Gelatin/MoS2 Hydrogels With Molecular Recognition Properties,” International Journal of Biological Macromolecules 182 (2021): 2048-2055.

[147]

Y. Chen, S. Hu, H. Wang, et al., “MoS2 Nanosheets Modified Surface Plasmon Resonance Sensors for Sensitivity Enhancement,” Advanced Optical Materials 7, no. 13 (2019): 1900479.

[148]

S. S. Chou, B. Kaehr, J. Kim, et al., “Chemically Exfoliated MoS2 as Near-Infrared Photothermal Agents,” Angewandte Chemie International Edition 52, no. 15 (2013): 4160-4164.

[149]

W. J. Yang, X. Wang, R. Zhang, et al., “A Hybrid Polyvinyl Alcohol/Molybdenum Disulfide Nanosheet Hydrogel With Light-Triggered Rapid Self-Healing Capability,” Journal of Materials Chemistry B 9, no. 9 (2021): 2266-2274.

[150]

M. Vera-Hidalgo, E. Giovanelli, C. Navío, and E. M. Pérez, “Mild Covalent Functionalization of Transition Metal Dichalcogenides With Maleimides: A “Click” Reaction for 2H-MoS2 and WS2,” Journal of the American Chemical Society 141, no. 9 (2019): 3767-3771.

[151]

D. O. Li, M. S. Gilliam, X. S. Chu, et al., “Covalent Chemical Functionalization of Semiconducting Layered Chalcogenide Nanosheets,” Molecular Systems Design & Engineering 4, no. 4 (2019): 962-973.

[152]

D. Voiry, A. Goswami, R. Kappera, et al., “Covalent Functionalization of Monolayered Transition Metal Dichalcogenides by Phase Engineering,” Nature Chemistry 7, no. 1 (2015): 45-49.

[153]

Y. Qi, Y. Yuan, Z. Qian, X. Ma, W. Yuan, and Y. Song, “Injectable and Self-Healing Polysaccharide Hydrogel Loading Molybdenum Disulfide Nanoflakes for Synergistic Photothermal-Photodynamic Therapy of Breast Cancer,” Macromolecular Bioscience 22, no. 9 (2022): 2200161.

[154]

Y. Wang, X. Huang, and X. Zhang, “Ultrarobust, Tough and Highly Stretchable Self-Healing Materials Based on Cartilage-Inspired Noncovalent Assembly Nanostructure,” Nature Communications 12, no. 1 (2021): 1291.

[155]

K. M. Lee, Y. Oh, H. Yoon, M. Chang, and H. Kim, “Multifunctional Role of MoS2 in Preparation of Composite Hydrogels: Radical Initiation and Cross-Linking,” ACS Applied Materials & Interfaces 12, no. 7 (2020): 8642-8649.

[156]

X. Song, Q. Li, and J. Ji, et al., “A Comprehensive Investigation on CVD Growth Thermokinetics of h-BN White Graphene,” 2D Materials 3, no. 3 (2016): 035007.

[157]

K. Zhang, Y. Feng, F. Wang, Z. Yang, and J. Wang, “Two Dimensional Hexagonal Boron Nitride (2D-hBN): Synthesis, Properties and Applications,” Journal of Materials Chemistry C 5, no. 46 (2017): 11992-12022.

[158]

M. J. G. Guimarey, C. R. Ratwani, K. Xie, et al., “Multifunctional Steel Surface Through the Treatment With Graphene and h-BN,” Tribology International 180 (2023): 108264.

[159]

C. Yu, J. Zhang, W. Tian, X. Fan, and Y. Yao, “Polymer Composites Based on Hexagonal Boron Nitride and Their Application in Thermally Conductive Composites,” RSC Advances 8, no. 39 (2018): 21948-21967.

[160]

M. J. Molaei, M. Younas, and M. Rezakazemi, “A Comprehensive Review on Recent Advances in Two-Dimensional (2D) Hexagonal Boron Nitride,” ACS Applied Electronic Materials 3, no. 12 (2021): 5165-5187.

[161]

G. Cassabois, P. Valvin, and B. Gil, “Hexagonal Boron Nitride Is an Indirect Bandgap Semiconductor,” Nature Photonics 10, no. 4 (2016): 262-266.

[162]

S. Rouhi, “Molecular Dynamics Simulation of the Adsorption of Polymer Chains on CNTs, BNNTs and GaNNTs,” Fibers and Polymers 17, no. 3 (2016): 333-342.

[163]

X. Chen, L. Zhang, C. Park, C. C. Fay, X. Wang, and C. Ke, “Mechanical Strength of Boron Nitride Nanotube-Polymer Interfaces,” Applied Physics Letters 107, no. 25 (2015): 253105.

[164]

X. Wu and Q. Han, “Thermal Conductivity of Monolayer Hexagonal Boron Nitride: From Defective to Amorphous,” Computational Materials Science 184 (2020): 109938.

[165]

W. Wang, Z. Li, A. J. Marsden, M. A. Bissett, and R. J. Young, “Mechanisms of Reinforcement of PVA-Based Nanocomposites by hBN Nanosheets,” Composites Science and Technology 218 (2022): 109131.

[166]

R. Jan, M. Sadiq, and A. Hussain, “Boron Nitride-Polymer Composites: Mechanical Properties Evaluation at Various Strain Ratios,” in 2017 14th International Bhurban Conference on Applied Sciences and Technology (IBCAST) (Islamabad, Pakistan, 2017), 25-28.

[167]

R. Ayoob, F. Alhabill, T. Andritsch, and A. Vaughan, “Enhanced Dielectric Properties of Polyethylene/Hexagonal Boron Nitride Nanocomposites,” Journal of Materials Science 53, no. 5 (2018): 3427-3442.

[168]

C. Pan, K. Kou, Q. Jia, Y. Zhang, G. Wu, and T. Ji, “Improved Thermal Conductivity and Dielectric Properties of hBN/PTFE Composites via Surface Treatment by Silane Coupling Agent,” Composites Part B: Engineering 111 (2017): 83-90.

[169]

B. Wang, X. Yin, D. Peng, et al., “Highly Thermally Conductive PVDF-Based Ternary Dielectric Composites via Engineering Hybrid Filler Networks,” Composites Part B: Engineering 191 (2020): 107978.

[170]

A. M. Patki, A. A. Maharanwar, S. K. Harde, and R. K. Goyal, “Polycarbonate-Hexagonal Boron Nitride Composites With Better Dielectric Properties for Electronic Applications,” SN Applied Sciences 1, no. 7 (2019): 775.

[171]

S. Haller, D. Bachellerie, S. Pruvost, et al., “Epoxy Composite With hBN Fillers Compatible With Industrial Application in Electrical Equipment,” in 2020 IEEE 3rd International Conference on Dielectrics (ICD) (IEEE, 2020), 590-593.

[172]

C. Verma, S. Dubey, I. Barsoum, A. Alfantazi, E. E. Ebenso, and M. A. Quraishi, “Hexagonal Boron Nitride as a Cutting-Edge 2D Material for Additive Application in Anticorrosive Coatings: Recent Progress, Challenges and Opportunities,” Materials Today Communications 35 (2023): 106367.

[173]

X. Yang, Y. Guo, X. Luo, et al., “Self-Healing, Recoverable Epoxy Elastomers and Their Composites With Desirable Thermal Conductivities by Incorporating BN Fillers via In-Situ Polymerization,” Composites Science and Technology 164 (2018): 59-64.

[174]

U. Lafont, C. Moreno-Belle, H. van Zeijl, and S. van der Zwaag, “Self-Healing Thermally Conductive Adhesives,” Journal of Intelligent Material Systems and Structures 25, no. 1 (2014): 67-74.

[175]

S. Wang and M. W. Urban, “Self-Healing Polymers,” Nature Reviews Materials 5, no. 8 (2020): 562-583.

[176]

N. Kostoglou, K. Polychronopoulou, and C. Rebholz, “Thermal and Chemical Stability of Hexagonal Boron Nitride (h-BN) Nanoplatelets,” Vacuum 112 (2015): 42-45.

[177]

L. Jing, H. Li, R. Y. Tay, et al., “Biocompatible Hydroxylated Boron Nitride Nanosheets/Poly(Vinyl Alcohol) Interpenetrating Hydrogels With Enhanced Mechanical and Thermal Responses,” ACS Nano 11, no. 4 (2017): 3742-3751.

[178]

G. R. Jaffe, K. J. Smith, K. Watanabe, et al., “Thickness-Dependent Cross-Plane Thermal Conductivity Measurements of Exfoliated Hexagonal Boron Nitride,” ACS Applied Materials & Interfaces 15, no. 9 (2023): 12545-12550.

[179]

Q. Cai, D. Scullion, W. Gan, et al., “High Thermal Conductivity of High-Quality Monolayer Boron Nitride and Its Thermal Expansion,” Science Advances 5, no. 6 (2019): eaav0129.

[180]

Z. Shang, D. Ding, X. Wang, et al., “High Thermal Conductivity of Self-Healing Polydimethylsiloxane Elastomer Composites by the Orientation of Boron Nitride Nano Sheets,” Polymers for Advanced Technologies 32, no. 12 (2021): 4745-4754.

[181]

X. Gao, T. Deng, X. Huang, et al., “Porous Boron Nitride Nanofibers as Effective Nanofillers for Poly(Vinyl Alcohol) Composite Hydrogels With Excellent Self-Healing Performances,” Soft Matter 18, no. 4 (2022): 859-866.

[182]

B. Briou, B. Améduri, and B. Boutevin, “Trends in the Diels-Alder Reaction in Polymer Chemistry,” Chemical Society Reviews 50, no. 19 (2021): 11055-11097.

[183]

B. Ghosh, F. Xu, and X. Hou, “Thermally Conductive Poly(Ether Ether Ketone)/Boron Nitride Composites With Low Coefficient of Thermal Expansion,” Journal of Materials Science 56, no. 17 (2021): 10326-10337.

[184]

Y. Cao, J. Zhang, D. Zhang, et al., “A Novel Shape Memory-Assisted and Thermo-Induced Self-Healing Boron Nitride/Epoxy Composites Based on Diels-Alder Reaction,” Journal of Materials Science 55, no. 25 (2020): 11325-11338.

[185]

Y. Cao, X. Wang, J. Wu, et al., “A Novel Self-Healing and Removable Hexagonal Boron Nitride/Epoxy Coating With Excellent Anti-Corrosive Property Based on Diels-Alder Reaction,” Progress in Organic Coatings 173 (2022): 107209.

[186]

A. VahidMohammadi, J. Rosen, and Y. Gogotsi, “The World of Two-Dimensional Carbides and Nitrides (MXenes),” Science 372, no. 6547 (2021): eabf1581.

[187]

M. Naguib, V. N. Mochalin, M. W. Barsoum, and Y. Gogotsi, “25th Anniversary Article: MXenes: A New Family of Two-Dimensional Materials,” Advanced Materials 26, no. 7 (2014): 992-1005.

[188]

L. Verger, C. Xu, V. Natu, H.-M. Cheng, W. Ren, and M. W. Barsoum, “Overview of the Synthesis of MXenes and Other Ultrathin 2D Transition Metal Carbides and Nitrides,” Current Opinion in Solid State and Materials Science 23, no. 3 (2019): 149-163.

[189]

M. Mozafari and M. Soroush, “Surface Functionalization of MXenes,” Materials Advances 2, no. 22 (2021): 7277-7307.

[190]

G. Ge, Y.-Z. Zhang, W. Zhang, et al., “Ti3C2Tx MXene-Activated Fast Gelation of Stretchable and Self-Healing Hydrogels: A Molecular Approach,” ACS Nano 15, no. 2 (2021): 2698-2706.

[191]

C. R. Ratwani, D. Demko, B. Bakhit, A. R. Kamali, and A. M. Abdelkader, “Tuning Surface Terminations and Hydration Interactions in MXene Nanosheet-Based Hydrogel Composites for Self-Healable Strain Sensors,” ACS Applied Nano Materials 7, no. 17 (2024): 20196-20205.

[192]

X. Liu, J. Wu, J. He, and L. Zhang, “Electromagnetic Interference Shielding Effectiveness of Titanium Carbide Sheets,” Materials Letters 205 (2017): 261-263.

[193]

M. Han, C. E. Shuck, R. Rakhmanov, et al., “Beyond Ti3C2Tx: MXenes for Electromagnetic Interference Shielding,” ACS Nano 14, no. 4 (2020): 5008-5016.

[194]

T. S. Mathis, K. Maleski, A. Goad, et al., “Modified MAX Phase Synthesis for Environmentally Stable and Highly Conductive Ti3C2 MXene,” ACS Nano 15, no. 4 (2021): 6420-6429.

[195]

X. Zheng, H. Zhang, Z. Liu, R. Jiang, and X. Zhou, “Functional Composite Electromagnetic Shielding Materials for Aerospace, Electronics and Wearable Fields,” Materials Today Communications 33 (2022): 104498.

[196]

X. Wu, B. Han, H.-B. Zhang, et al., “Compressible, Durable and Conductive Polydimethylsiloxane-Coated MXene Foams for High-Performance Electromagnetic Interference Shielding,” Chemical Engineering Journal 381 (2020): 122622.

[197]

L. Wang, L. Chen, P. Song, et al., “Fabrication on the Annealed Ti3C2Tx MXene/Epoxy Nanocomposites for Electromagnetic Interference Shielding Application,” Composites Part B: Engineering 171 (2019): 111-118.

[198]

Y. Zhu, J. Liu, T. Guo, J. J. Wang, X. Tang, and V. Nicolosi, “Multifunctional Ti3C2Tx MXene Composite Hydrogels With Strain Sensitivity Toward Absorption-Dominated Electromagnetic-Interference Shielding,” ACS Nano 15, no. 1 (2021): 1465-1474.

[199]

W. Ma, W. Cai, W. Chen, P. Liu, J. Wang, and Z. Liu, “A Novel Structural Design of Shielding Capsule to Prepare High-Performance and Self-Healing MXene-Based Sponge for Ultra-Efficient Electromagnetic Interference Shielding,” Chemical Engineering Journal 426 (2021): 130729.

[200]

J. Xu, T. Liu, Y. Zhang, et al., “Dragonfly Wing-Inspired Architecture Makes a Stiff Yet Tough Healable Material,” Matter 4, no. 7 (2021): 2474-2489.

[201]

C. Jiao, Z. Deng, P. Min, et al., “Photothermal Healable, Stretchable, and Conductive MXene Composite Films for Efficient Electromagnetic Interference Shielding,” Carbon 198 (2022): 179-187.

[202]

Z. Wang, P. Wang, W. Cao, et al., “Robust, Transparent, and Conductive AgNW/MXene Composite Polyurethane Self-Healing Film for Electromagnetic Interference Shielding,” Journal of Materials Chemistry C 10, no. 45 (2022): 17066-17074.

[203]

M. Zhou, W. Liu, and H. Fu, “Construction of Ultrathin Self-Healing Films With Highly Efficient Electromagnetic Interference Shielding and Joule Heating Capability by MXene Decorating Liquid Metal,” Journal of Alloys and Compounds 968 (2023): 171931.

[204]

H. Li, X. Ru, Y. Song, et al., “Flexible and Self-Healing 3D MXene/Reduced Graphene Oxide/Polyurethane Composites for High-Performance Electromagnetic Interference Shielding,” Composites Science and Technology 227 (2022): 109602.

[205]

P. Song, B. Liu, H. Qiu, X. Shi, D. Cao, and J. Gu, “MXenes for Polymer Matrix Electromagnetic Interference Shielding Composites: A Review,” Composites Communications 24 (2021): 100653.

[206]

T. Yu, X. Lei, Y. Zhou, and H. Chen, “Ti3C2Tx MXenes Reinforced PAA/CS Hydrogels With Self-Healing Function as Flexible Supercapacitor Electrodes,” Polymers for Advanced Technologies 32, no. 8 (2021): 3167-3179.

[207]

Y. Yue, N. Liu, Y. Ma, et al., “Highly Self-Healable 3D Microsupercapacitor With MXene-Graphene Composite Aerogel,” ACS Nano 12, no. 5 (2018): 4224-4232.

[208]

X. Li, Y. Ma, P. Shen, et al., “Self-Healing Microsupercapacitors With Size-Dependent 2D MXene,” ChemElectroChem 7, no. 3 (2020): 821-829.

[209]

W.-w. Hu, X.-y. Shi, M.-h. Gao, et al., “Light-Actuated Shape Memory and Self-Healing Phase Change Composites Supported by MXene/Waterborne Polyurethane Aerogel for Superior Solar-Thermal Energy Storage,” Composites Communications 28 (2021): 100980.

[210]

W.-G. Kim, D.-W. Kim, I.-W. Tcho, J.-K. Kim, M.-S. Kim, and Y.-K. Choi, “Triboelectric Nanogenerator: Structure, Mechanism, and Applications,” ACS Nano 15, no. 1 (2021): 258-287.

[211]

W. He, S. Li, P. Bai, et al., “Multifunctional Triboelectric Nanogenerator Based on Flexible and Self-Healing Sandwich Structural Film,” Nano Energy 96 (2022): 107109.

[212]

C. Tan, X. Cao, X.-J. Wu, et al., “Recent Advances in Ultrathin Two-Dimensional Nanomaterials,” Chemical Reviews 117, no. 9 (2017): 6225-6331.

[213]

M. Cai, H. Yan, Y. Li, et al., “Ti3C2Tx/PANI Composites With Tunable Conductivity Towards Anticorrosion Application,” Chemical Engineering Journal 410 (2021): 128310.

[214]

X. Li, Z. Xue, W. Sun, et al., “Bio-Inspired Self-Healing MXene/Polyurethane Coating With Superior Active/Passive Anticorrosion Performance for Mg Alloy,” Chemical Engineering Journal 454 (2023): 140187.

[215]

X. Sun, C. Ma, F. Ma, T. Wang, C. Feng, and W. Wang, “A Novel Coating With SiO2 Anchored on MXene Loading Tannic Acid for Self-Healing Anticorrosive Performance,” Journal of Alloys and Compounds 928 (2022): 167202.

[216]

P. Wang, B. He, B. Wang, et al., “MXene/Metal-Organic Framework Based Composite Coating With Photothermal Self-Healing Performances for Antifouling Application,” Chemical Engineering Journal 474 (2023): 145835.

[217]

S. A. Haddadi, S. Hu, S. Ghaderi, et al., “Amino-Functionalized MXene Nanosheets Doped With Ce(III) as Potent Nanocontainers Toward Self-Healing Epoxy Nanocomposite Coating for Corrosion Protection of Mild Steel,” ACS Applied Materials & Interfaces 13, no. 35 (2021): 42074-42093.

[218]

Y. Dong, Y. Yin, X. Du, C. Liu, and Q. Zhou, “Effect of MXene@PANI on the Self-Healing Property of Shape Memory-Assisted Coating,” Synthetic Metals 291 (2022): 117162.

[219]

Y. Zou, L. Fang, T. Chen, M. Sun, C. Lu, and Z. Xu, “Near-Infrared Light and Solar Light Activated Self-Healing Epoxy Coating Having Enhanced Properties Using MXene Flakes as Multifunctional Fillers,” Polymers 10, no. 5 (2018): 474.

[220]

Y. Hu, Y. Cui, X. Que, et al., “Super Adhesive MXene-Based Nanocomposite Hydrogel With Self-Healable and Conductivity Properties via Radiation Synthesis,” Advanced Engineering Materials 24, no. 9 (2022): 2101692.

[221]

M. Wang, O. J. Rojas, L. Ning, et al., “Liquid Metal and MXene Enable Self-Healing Soft Electronics Based on Double Networks of Bacterial Cellulose Hydrogels,” Carbohydrate Polymers 301 (2023): 120330.

[222]

A. Rafieerad, G. L. Sequiera, W. Yan, P. Kaur, A. Amiri, and S. Dhingra, “Sweet-MXene Hydrogel With Mixed-Dimensional Components for Biomedical Applications,” Journal of the Mechanical Behavior of Biomedical Materials 101 (2020): 103440.

[223]

H. Zhu, W. Dai, L. Wang, et al., “Electroactive Oxidized Alginate/Gelatin/MXene (Ti3C2Tx) Composite Hydrogel With Improved Biocompatibility and Self-Healing Property,” Polymers 14, no. 18 (2022): 3908.

[224]

J. Xu, Y. Li, T. Liu, et al., “Room-Temperature Self-Healing Soft Composite Network With Unprecedented Crack Propagation Resistance Enabled by a Supramolecular Assembled Lamellar Structure,” Advanced Materials 35, no. 26 (2023): 2300937.

[225]

Y.-W. Cai, G.-G. Wang, Y.-C. Mei, et al., “Self-Healable, Super-Stretchable and Shape-Adaptive Triboelectric Nanogenerator Based on Double Cross-Linked PDMS for Electronic Skins,” Nano Energy 102 (2022): 107683.

[226]

S. Sharma, A. Chhetry, M. Sharifuzzaman, H. Yoon, and J. Y. Park, “Wearable Capacitive Pressure Sensor Based on MXene Composite Nanofibrous Scaffolds for Reliable Human Physiological Signal Acquisition,” ACS Applied Materials & Interfaces 12, no. 19 (2020): 22212-22224.

[227]

Y.-Z. Zhang, K. H. Lee, D. H. Anjum, et al., “MXenes Stretch Hydrogel Sensor Performance to New Limits,” Science Advances 4, no. 6 (2018): eaat0098.

[228]

B. Guo, S. He, M. Yao, et al., “MXene-Containing Anisotropic Hydrogels Strain Sensors With Enhanced Sensing Performance for Human Motion Monitoring and Wireless Transmission,” Chemical Engineering Journal 461 (2023): 142099.

[229]

L. Li, X. Fu, S. Chen, et al., “Hydrophobic and Stable MXene-Polymer Pressure Sensors for Wearable Electronics,” ACS Applied Materials & Interfaces 12, no. 13 (2020): 15362-15369.

[230]

Y. Ma, D. Zhang, Z. Wang, et al., “Self-Adhesive, Anti-Freezing MXene-Based Hydrogel Strain Sensor for Motion Monitoring and Handwriting Recognition With Deep Learning,” ACS Applied Materials & Interfaces 15, no. 24 (2023): 29413-29424.

[231]

X. Li, R. Zhang, W. Yu, et al., “Stretchable and Highly Sensitive Graphene-on-Polymer Strain Sensors,” Scientific Reports 2, no. 1 (2012): 870.

[232]

H. Riazi, G. Taghizadeh, and M. Soroush, “MXene-Based Nanocomposite Sensors,” ACS Omega 6, no. 17 (2021): 11103-11112.

[233]

H. Liao, X. Guo, P. Wan, and G. Yu, “Conductive MXene Nanocomposite Organohydrogel for Flexible, Healable, Low-Temperature Tolerant Strain Sensors,” Advanced Functional Materials 29, no. 39 (2019): 1904507.

[234]

Q. Guo, X. Zhang, F. Zhao, et al., “Protein-Inspired Self-Healable Ti3C2 MXenes/Rubber-Based Supramolecular Elastomer for Intelligent Sensing,” ACS Nano 14, no. 3 (2020): 2788-2797.

[235]

K. Zhang, J. Sun, J. Song, et al., “Self-Healing Ti3C2 MXene/PDMS Supramolecular Elastomers Based on Small Biomolecules Modification for Wearable Sensors,” ACS Applied Materials & Interfaces 12, no. 40 (2020): 45306-45314.

[236]

Z. Wang, K. Zhang, Y. Liu, H. Zhao, C. Gao, and Y. Wu, “Modified MXene-Doped Conductive Organosilicon Elastomer With High-Stretchable, Toughness, and Self-Healable for Strain Sensors,” Composite Structures 282 (2022): 115071.

[237]

Y. Cheng, Y. Xie, H. Cao, et al., “High-Strength MXene Sheets Through Interlayer Hydrogen Bonding for Self-Healing Flexible Pressure Sensor,” Chemical Engineering Journal 453 (2023): 139823.

[238]

Y. Zhang, K. Chen, Y. Li, et al., “High-Strength, Self-Healable, Temperature-Sensitive, MXene-Containing Composite Hydrogel as a Smart Compression Sensor,” ACS Applied Materials & Interfaces 11, no. 50 (2019): 47350-47357.

[239]

J. Wang, T. Dai, Y. Zhou, A. Mohamed, G. Yuan, and H. Jia, “Adhesive and High-Sensitivity Modified Ti3C2TX (MXene)-Based Organohydrogels With Wide Work Temperature Range for Wearable Sensors,” Journal of Colloid and Interface Science 613 (2022): 94-102.

[240]

X. Wu, H. Liao, D. Ma, et al., “A Wearable, Self-Adhesive, Long-Lastingly Moist and Healable Epidermal Sensor Assembled From Conductive MXene Nanocomposites,” Journal of Materials Chemistry C 8, no. 5 (2020): 1788-1795.

[241]

Z. Wang, Y. Liu, D. Zhang, K. Zhang, C. Gao, and Y. Wu, “Tough, Stretchable and Self-Healing C-MXenes/PDMS Conductive Composites as Sensitive Strain Sensors,” Composites Science and Technology 216 (2021): 109042.

[242]

Y. He, Z. Deng, Y.-J. Wang, Y. Zhao, and L. Chen, “Polysaccharide/Ti3C2Tx MXene Adhesive Hydrogels With Self-Healing Ability for Multifunctional and Sensitive Sensors,” Carbohydrate Polymers 291 (2022): 119572.

[243]

C. Ye, F. Yan, X. Lan, et al., “Novel MXene Sensors Based on Fast Healing Vitrimers,” Applied Materials Today 29 (2022): 101683.

[244]

K. Chen, Y. Hu, F. Wang, et al., “Ultra-Stretchable, Adhesive, and Self-Healing MXene/Polyampholytes Hydrogel as Flexible and Wearable Epidermal Sensors,” Colloids and Surfaces A: Physicochemical and Engineering Aspects 645 (2022): 128897.

[245]

Z. Nie, K. Peng, L. Lin, et al., “A Conductive Hydrogel Based on Nature Polymer Agar With Self-Healing Ability and Stretchability for Flexible Sensors,” Chemical Engineering Journal 454 (2023): 139843.

[246]

L. Zhang, X. Zhang, H. zhang, et al., “Semi-Embedded Robust MXene/AgNW Sensor With Self-Healing, High Sensitivity and a Wide Range for Motion Detection,” Chemical Engineering Journal 434 (2022): 134751.

[247]

W. Zhao, J. Jiang, W. Chen, Y. He, T. Lin, and L. Zhao, “Radiation Synthesis of Rapidly Self-Healing, Durable, and Flexible Poly(Ionic Liquid)/MXene Gels With Anti-Freezing Property for Multi-Functional Strain Sensors,” Chemical Engineering Journal 468 (2023): 143660.

[248]

A. Chae, G. Murali, S.-Y. Lee, et al., “Highly Oxidation-Resistant and Self-Healable MXene-Based Hydrogels for Wearable Strain Sensor,” Advanced Functional Materials 33, no. 24 (2023): 2213382.

[249]

M. Xie, S. Li, X. Qi, et al., “Thermal and Infrared Light Self-Repairing, High Sensitivity, and Large Strain Sensing Range Shape Memory MXene/CNTs/EVA Composites Fiber Strain Sensor for Human Motion Monitoring,” Sensors and Actuators A: Physical 347 (2022): 113939.

[250]

S.-N. Li, Z.-R. Yu, B.-F. Guo, et al., “Environmentally Stable, Mechanically Flexible, Self-Adhesive, and Electrically Conductive Ti3C2TX MXene Hydrogels for Wide-Temperature Strain Sensing,” Nano Energy 90 (2021): 106502.

[251]

H. Zhai, T. Wang, C. Yue, et al., “Self-Healing, Adhesive, and Antioxidant MXene-Reinforced Conductive Hydrogels for Stain Sensor,” Materials Today Communications 35 (2023): 106245.

[252]

L. Li, X. Ji, and K. Chen, “Conductive, Self-Healing, and Antibacterial Ag/MXene-PVA Hydrogel as Wearable Skin-Like Sensors,” Journal of Biomaterials Applications 37, no. 7 (2023): 1169-1181.

[253]

X. Li, L. He, Y. Li, et al., “Healable, Degradable, and Conductive MXene Nanocomposite Hydrogel for Multifunctional Epidermal Sensors,” ACS Nano 15, no. 4 (2021): 7765-7773.

[254]

L. Zhang, H. Zhang, X. Yu, et al., “Superhydrophobic MXene Coating With Biomimetic Structure for Self-Healing Photothermal Deicing and Photoelectric Detector,” ACS Applied Materials & Interfaces 14, no. 47 (2022): 53298-53313.

[255]

C. Wang, L. Chen, H. Meng, et al., “Multifunctional Janus-Type Self-Healing MXene/Polyionic Liquid Flexible Sensor,” Composites Science and Technology 243 (2023): 110240.

[256]

K. R. Reddy, A. El-Zein, D. W. Airey, F. Alonso-Marroquin, P. Schubel, and A. Manalo, “Self-Healing Polymers: Synthesis Methods and Applications,” Nano-Structures & Nano-Objects 23 (2020): 100500.

[257]

S. Ng and J. Plank, “Interaction Mechanisms Between Na Montmorillonite Clay and MPEG-Based Polycarboxylate Superplasticizers,” Cement and Concrete Research 42, no. 6 (2012): 847-854.

[258]

M. J. G. Guimarey, S. Karunarathne, C. R. Ratwani, J. L. Viesca, A. H. Battez, and A. M. Abdelkader, “2D Mica as a New Additive for Nanolubricants With High Tribological Performance,” Tribology International 200 (2024): 110075.

[259]

A. C. da Silva, K. J. Ciuffi, dos Reis MJ, P. S. Calefi, and E. H. de Faria, “Influence of Physical/Chemical Treatments to Delamination of Nanohybrid Kaolinite-Dipicolinate,” Applied Clay Science 126 (2016): 251-258.

[260]

M. De Camillis, G. Di Emidio, A. Bezuijen, D. Verastegui Flores, J. Van Stappen, and V. Cnudde, “Effect of Wet-Dry Cycles on Polymer Treated Bentonite in Seawater: Swelling Ability, Hydraulic Conductivity and Crack Analysis,” Applied Clay Science 142 (2017): 52-59.

[261]

K. Roushangar, M. T. Alami, and Y. Houshyar, “Experimental Investigation of Bentonite Impact on Self-Healing of Clay Soils,” Arabian Journal of Geosciences 13, no. 21 (2020): 1122.

[262]

N. Yaghmaeiyan, M. Mirzaei, and R. Delghavi, “Montmorillonite Clay: Introduction and Evaluation of Its Applications in Different Organic Syntheses as Catalyst: A Review,” Results in Chemistry 4 (2022): 100549.

[263]

F. Farshi Azhar and A. Ahmadinia, “Self-Healing Cementitious Materials Containing Encapsulated Epoxy-Montmorillonite-Calcium Nitrate: Evaluating Crack-Healing Performance, Mechanical and Thermal Properties,” Journal of Sustainable Cement-Based Materials 12, no. 1 (2023): 36-48.

[264]

Z. Zhang, P. Cheng, and Y. Li, “Effect of Nano Montmorillonite on the Multiple Self-Healing of Microcracks in Asphalt Mixture,” Road Materials and Pavement Design 22, no. 12 (2021): 2689-2703.

[265]

G. Gao, G. Du, Y. Sun, and J. Fu, “Self-Healable, Tough, and Ultrastretchable Nanocomposite Hydrogels Based on Reversible Polyacrylamide/Montmorillonite Adsorption,” ACS Applied Materials & Interfaces 7, no. 8 (2015): 5029-5037.

[266]

X. Qi, Y. Guan, G. Chen, et al., “A Non-Covalent Strategy for Montmorillonite/Xylose Self-Healing Hydrogels,” RSC Advances 5, no. 51 (2015): 41006-41012.

[267]

Y. Chen, T. Zhang, H. Zhong, R. Liu, and J. Xu, “Improved Surface Properties of a Novel Self-Healing Polyurethane-Acrylate Coating by In Situ Polymerizations of Dihydroxy Organo-Montmorillonite on Ancient Wood,” Progress in Organic Coatings 172 (2022): 107134.

[268]

S. Li, Y. Xu, F. Xiang, et al., “Enhanced Corrosion Resistance of Self-Healing Waterborne Polyurethane Coating Based on Tannic Acid Modified Cerium-Montmorillonites Composite Fillers,” Progress in Organic Coatings 178 (2023): 107454.

[269]

S. Manasa, T. Siva, S. Sathiyanarayanan, K. V. Gobi, and R. Subasri, “Montmorillonite Nanoclay-Based Self-Healing Coatings on AA 2024-T4,” Journal of Coatings Technology and Research 15, no. 4 (2018): 721-735.

[270]

A. Yabuki, M. Kanagaki, C. Nishikawa, J. H. Lee, and I. W. Fathona, “Effective Release of Corrosion Inhibitor by Cellulose Nanofibers and Zeolite Particles in Self-Healing Coatings for Corrosion Protection,” Progress in Organic Coatings 154 (2021): 106194.

[271]

C. Xu, R. Cui, L. Fu, and B. Lin, “Recyclable and Heat-Healable Epoxidized Natural Rubber/Bentonite Composites,” Composites Science and Technology 167 (2018): 421-430.

[272]

T. B. Becher, C. B. Braga, D. L. Bertuzzi, et al., “The Structure-Property Relationship in LAPONITE® Materials: From Wigner Glasses to Strong Self-Healing Hydrogels Formed by Non-Covalent Interactions,” Soft Matter 15, no. 6 (2019): 1278-1289.

[273]

O. Akca, B. Yetiskin, and O. Okay, “Hydrophobically Modified Nanocomposite Hydrogels With Self-Healing Ability,” Journal of Applied Polymer Science 137, no. 28 (2020): 48853.

[274]

C. Xiong, F. Wei, Z. Ye, et al., “An Injectable Self-Healing Hydrogel Based on Poly(Acrylamide-co-N-Vinylimidazole) and Laponite Clay Nanosheets,” Journal of Applied Polymer Science 140, no. 7 (2023): e53491.

[275]

S. Tamesue, Y. Saito, and R. Toita, “Salinity Durable Self-Healing Hydrogels as Functional Biomimetic Systems Based on the Intercalation of Polymer Ions Into Mica,” Polymer 228 (2021): 123870.

[276]

J. Ding, H. Zhao, and H. Yu, “Epidermis Microstructure Inspired Mica-Based Coatings for Smart Corrosion Protection,” Progress in Organic Coatings 152 (2021): 106126.

[277]

X. Xiao, Z. Ye, G. Meng, and L. Gu, “Mussel-Inspired Preparation of Superhydrophobic Mica Nanosheets for Long-Term Anticorrosion and Self-Healing Performance of Epoxy Coatings,” Progress in Organic Coatings 178 (2023): 107456.

[278]

Y. Hui, Z.-B. Wen, F. Pilate, et al., “A Facile Strategy to Fabricate Highly-Stretchable Self-Healing Poly(Vinyl Alcohol) Hybrid Hydrogels Based on Metal-Ligand Interactions and Hydrogen Bonding,” Polymer Chemistry 7, no. 47 (2016): 7269-7277.

[279]

W. Post, E. Jeoffroy, S. J. García, and S. van der Zwaag, “Self-Healing Glass Fiber Reinforced Polymer Composites Based on Montmorillonite Reinforced Compartmented Alginate Fibers,” Polymer Composites 40, no. 2 (2019): 471-480.

[280]

Y. Zhang, H. Xu, and S. Lu, “Preparation and Application of Layered Double Hydroxide Nanosheets,” RSC Advances 11, no. 39 (2021): 24254-24281.

[281]

S. Mallakpour, Z. Radfar, and C. M. Hussain, “Current Advances on Polymer-Layered Double Hydroxides/Metal Oxides Nanocomposites and Bionanocomposites: Fabrications and Applications in the Textile Industry and Nanofibers,” Applied Clay Science 206 (2021): 106054.

[282]

Z. Lu, L. Qian, Y. Tian, Y. Li, X. Sun, and X. Duan, “Ternary NiFeMn Layered Double Hydroxides as Highly-Efficient Oxygen Evolution Catalysts,” Chemical Communications 52, no. 5 (2016): 908-911.

[283]

M. Adachi-Pagano, C. Forano, and J.-P. Besse, “Delamination of Layered Double Hydroxides by Use of Surfactants,” Chemical Communications, no. 1 (2000): 91-92.

[284]

J. Li, X. Gao, Z. Li, et al., “Superhydrophilic Graphdiyne Accelerates Interfacial Mass/Electron Transportation to Boost Electrocatalytic and Photoelectrocatalytic Water Oxidation Activity,” Advanced Functional Materials 29, no. 16 (2019): 1808079.

[285]

M. Luo, Z. Cai, C. Wang, et al., “Phosphorus Oxoanion-Intercalated Layered Double Hydroxides for High-Performance Oxygen Evolution,” Nano Research 10, no. 5 (2017): 1732-1739.

[286]

C. Zhang, M. Shao, L. Zhou, Z. Li, K. Xiao, and M. Wei, “Hierarchical NiFe Layered Double Hydroxide Hollow Microspheres With Highly-Efficient Behavior Toward Oxygen Evolution Reaction,” ACS Applied Materials & Interfaces 8, no. 49 (2016): 33697-33703.

[287]

Y. Wang, M. Qiao, Y. Li, and S. Wang, “Tuning Surface Electronic Configuration of NiFe LDHs Nanosheets by Introducing Cation Vacancies (Fe or Ni) as Highly Efficient Electrocatalysts for Oxygen Evolution Reaction,” Small 14, no. 17 (2018): 1800136.

[288]

X. Wang, J. Zhu, F. Zou, N. Zhou, Y. Li, and W. Lei, “Ca-Al LDH Hybrid Self-Healing Microcapsules for Corrosion Protection,” Chemical Engineering Journal 447 (2022): 137125.

[289]

X. Wang, J. Zhu, Y. Lei, and W. Lei, “Synthesis and Characterization of Layered Double Hydroxides Hybrid Microcapsules for Anticorrosion via Self-Healing and Chloride Ion Adsorption,” Applied Clay Science 221 (2022): 106481.

[290]

Y. Su, S. Qiu, J. Wei, X. Zhu, H. Zhao, and Q. Xue, “Sulfonated Polyaniline Assisted Hierarchical Assembly of Graphene-LDH Nanohybrid for Enhanced Anticorrosion Performance of Waterborne Epoxy Coatings,” Chemical Engineering Journal 426 (2021): 131269.

[291]

F. Zhong, Y. He, P. Wang, et al., “One-Step Hydrothermal Synthesis of Reduced Graphene Oxide/Aspartic Acid Intercalated Layered Double Hydroxide for Enhancing Barrier and Self-Healing Properties of Epoxy Coating,” Reactive and Functional Polymers 145 (2019): 104380.

[292]

Z. Wang, L. Fang, F. Wu, et al., “Anti-Corrosion, Self-Healing and Environmental-Friendly Ti3C2Tx/MgAl-LDH @Epoxy Composite Organic Coating for Mg Alloy Protection,” Journal of Materials Science 58, no. 7 (2023): 3283-3306.

[293]

Z. Sanaei, A. Shamsipur, and B. Ramezanzadeh, “Manipulating a Smart Multi-Functional Nano-Carrier Based on L-Cysteine-GO-ZIF67@ZIF8 Core@Shell MOFs-LDH for Designing an Excellent Self-Healing Coating,” Applied Materials Today 30 (2023): 101718.

[294]

Z. Sanaei, A. Shamsipur, and B. Ramezanzadeh, “Trisodium Phosphate-Loaded Hierarchically Ordered Meso-Nanoporous ZIF-67/ZIF-8 Metal-Organic Frameworks Assembled rGO-Zn-Al-LDH: A Multi-Level pH-Triggered Nano-Vehicle for Epoxy Coating Long-Lasting Self-Repairing/Barrier Properties Improvement,” Chemical Engineering Journal 451 (2023): 138872.

[295]

A. Manhique, W. W. Focke, A. Leuteritz, and C. Madivate, “Layered Double Hydroxides as Nano Additives in Poly(ϵ-Caprolactone),” Molecular Crystals and Liquid Crystals 556, no. 1 (2012): 114-123.

[296]

W.-J. Ong, L.-L. Tan, Y. H. Ng, S.-T. Yong, and S.-P. Chai, “Graphitic Carbon Nitride (g-C3N4)-Based Photocatalysts for Artificial Photosynthesis and Environmental Remediation: Are We a Step Closer to Achieving Sustainability?,” Chemical Reviews 116, no. 12 (2016): 7159-7329.

[297]

A. Thomas, A. Fischer, F. Goettmann, et al., “Graphitic Carbon Nitride Materials: Variation of Structure and Morphology and Their Use as Metal-Free Catalysts,” Journal of Materials Chemistry 18, no. 41 (2008): 4893-4908.

[298]

S. Cao, J. Low, J. Yu, and M. Jaroniec, “Polymeric Photocatalysts Based on Graphitic Carbon Nitride,” Advanced Materials 27, no. 13 (2015): 2150-2176.

[299]

J. H. Xu, S. Ye, C. D. Ding, L. H. Tan, and J. J. Fu, “Autonomous Self-Healing Supramolecular Elastomer Reinforced and Toughened by Graphitic Carbon Nitride Nanosheets Tailored for Smart Anticorrosion Coating Applications,” Journal of Materials Chemistry A 6, no. 14 (2018): 5887-5898.

[300]

B. Ye, C. Yao, M. Yan, et al., “Photo-Induced Hydrogel Formation Based on G-C3N4 Nanosheets With Self-Cross-Linked 3D Framework for UV Protection Application,” Macromolecular Materials and Engineering 304, no. 1 (2019): 1800500.

[301]

Y. Yang, H. Sun, B. Zhang, L. Hu, L. Xu, and J. Hao, “Hydrogels Totally From Inorganic Nanosheets and Water With Mechanical Robustness, Self-Healing, Controlled Lubrication and Anti-Corrosion,” Nano Research 16, no. 1 (2023): 1533-1544.

[302]

D. Callegari, S. Colombi, A. Nitti, et al., “Autonomous Self-Healing Strategy for Stable Sodium-Ion Battery: A Case Study of Black Phosphorus Anodes,” ACS Applied Materials & Interfaces 13, no. 11 (2021): 13170-13182.

[303]

T. Wang, H. Feng, W. Wang, et al., “Interfacial Controllable Heterojunctions Nanosheets as Photothermal Catalyzer for Cyclic Photothermal Self-Healing of Polydimethylsiloxane Coating,” Composites Part B: Engineering 240 (2022): 110002.

[304]

Y. R. Jeong, S. Y. Oh, J. W. Kim, S. W. Jin, and J. S. Ha, “A Highly Conductive and Electromechanically Self-Healable Gold Nanosheet Electrode for Stretchable Electronics,” Chemical Engineering Journal 384 (2020): 123336.

[305]

D. Xie, C. Hu, C. Jiang, et al., “Incorporating Copper-Based Nanosheets Into an Injectable Self-Healing Hydrogel Enables Superb Repair of Infected Diabetic Wound,” Chemical Engineering Journal 476 (2023): 146788.

[306]

M. Li, X. Li, C. Li, et al., “Silica-Based Janus Nanosheets for Self-Healing Nanocomposite Hydrogels,” European Polymer Journal 155 (2021): 110580.

[307]

Q. Fan, G. Wang, D. Tian, et al., “Self-Healing Nanocomposite Hydrogels via Janus Nanosheets: Multiple Effects of Metal-Coordination and Host-Guest Interactions,” Reactive and Functional Polymers 165 (2021): 104963.

[308]

M. Zeng, Y. Xiao, J. Liu, K. Yang, and L. Fu, “Exploring Two-Dimensional Materials Toward the Next-Generation Circuits: From Monomer Design to Assembly Control,” Chemical Reviews 118, no. 13 (2018): 6236-6296.

[309]

H. Wei, Y. Yang, X. Huang, et al., “Transparent, Robust, Water-Resistant and High-Barrier Self-Healing Elastomers Reinforced With Dynamic Supramolecular Nanosheets With Switchable Interfacial Connections,” Journal of Materials Chemistry A 8, no. 18 (2020): 9013-9020.

[310]

S. M. Lashgari, H. Yari, M. Mahdavian, B. Ramezanzadeh, G. Bahlakeh, and M. Ramezanzadeh, “Synthesis of Graphene Oxide Nanosheets Decorated by Nanoporous Zeolite-Imidazole (ZIF-67) Based Metal-Organic Framework With Controlled-Release Corrosion Inhibitor Performance: Experimental and Detailed DFT-D Theoretical Explorations,” Journal of Hazardous Materials 404 (2021): 124068.

[311]

S. Mahmood, A. Khan, C. Kant, C. W. Chu, M. Katiyar, and H.-C. Lin, “Transparent, Stretchable, and Self-Healable Gas Barrier Films With 2D Nanoplatelets for Flexible Electronic Device Packaging Applications,” Advanced Materials Interfaces 10, no. 5 (2023): 2202093.

[312]

A. Ma, G. Wang, Z. Yang, et al., “Fabrication of Janus Graphene Oxide Hybrid Nanosheets by Pickering Emulsion Template for Self-Healing Nanocomposite Hydrogels,” Chemical Engineering Journal 385 (2020): 123962.

[313]

S. Bode, M. Enke, M. Hernandez, et al., “Characterization of Self-Healing Polymers: From Macroscopic Healing Tests to the Molecular Mechanism,” in Self-Healing Ma, ed. M. D. Hager, S. van der Zwaag, and U. S. Schubert (Springer International Publishing, 2016), 113-142.

[314]

S. Billiet, X. K. D. Hillewaere, R. F. A. Teixeira, and F. E. Du Prez, “Chemistry of Crosslinking Processes for Self-Healing Polymers,” Macromolecular Rapid Communications 34, no. 4 (2013): 290-309.

[315]

N. V. Perepelkin, J. M. Martin-Martinez, A. E. Kovalev, F. M. Borodich, and S. N. Gorb, “Experimental Testing of Self-Healing Ability of Soft Polymer Materials,” Meccanica 54, no. 13 (2019): 1959-1970.

[316]

J. Benavides-Guerrero, D. Banerjee, D. Gedamu, L. F. Gerlein, and S. G. Cloutier, “Conductive, Anti-Corrosion, Self-Healing Smart Coating Technology Incorporating Graphene-Based Nanocomposite Matrix,” Frontiers in Materials 9 (2022): 835855.

[317]

B. S. Bohra, P. Singh, and A. Rana, “Specific Functionalized Graphene Oxide-Based Vitrimer Epoxy Nanocomposites for Self-Healing Applications,”Composites Science and Technology 241 (2023): 110143.

[318]

Q. Yue, Z. Luo, X. Li, and L. A. Fielding, “3D Printable, Thermo-Responsive, Self-Healing, Graphene Oxide Containing Self-Assembled Hydrogels Formed From Block Copolymer Wormlike Micelles,” Soft Matter 19, no. 34 (2023): 6513-6524.

[319]

J. Kötteritzsch, S. Stumpf, S. Hoeppener, J. Vitz, M. D. Hager, and U. S. Schubert, “One-Component Intrinsic Self-Healing Coatings Based on Reversible Crosslinking by Diels-Alder Cycloadditions,” Macromolecular Chemistry and Physics 214, no. 14 (2013): 1636-1649.

[320]

G. Li and X. Feng, “Healing Efficiency Characterization of Self-Healing Polymers,” in Recent Advances in Smart Self-Healing Polymers and Composites, 2nd ed., eds. G. Li and X. Feng (Woodhead Publishing, 2022), 27-55.

[321]

E. N. Brown, “Use of the Tapered Double-Cantilever Beam Geometry for Fracture Toughness Measurements and Its Application to the Quantification of Self-Healing,” Journal of Strain Analysis for Engineering Design 46, no. 3 (2011): 167-186.

[322]

T. A. Plaisted, A. V. Amirkhizi, and S. Nemat-Nasser, “Compression-Induced Axial Crack Propagation in DCDC Polymer Samples: Experiments and Modeling,” International Journal of Fracture 141, no. 3-4 (2006): 447-457.

[323]

G. Li, G. Ji, and O. Zhenyu, “Adhesively Bonded Healable Composite Joint,” International Journal of Adhesion and Adhesives 35 (2012): 59-67.

[324]

E. N. Brown, N. R. Sottos, and S. R. White, “Fracture Testing of a Self-Healing Polymer Composite,” Experimental Mechanics 42, no. 4 (2002): 372-379.

[325]

J. Raghavan and R. P. Wool, “Interfaces in Repair, Recycling, Joining and Manufacturing of Polymers and Polymer Composites,” Journal of Applied Polymer Science 71, no. 5 (1999): 775-785.

[326]

J. Nji and G. Li, “Damage Healing Ability of a Shape-Memory-Polymer-Based Particulate Composite With Small Thermoplastic Contents,” Smart Materials and Structures 21, no. 2 (2012): 025011.

[327]

G. Li, O. Ajisafe, and H. Meng, “Effect of Strain Hardening of Shape Memory Polymer Fibers on Healing Efficiency of Thermosetting Polymer Composites,” Polymer 54, no. 2 (2013): 920-928.

[328]

J. Nji and G. Li, “A Self-Healing 3D Woven Fabric Reinforced Shape Memory Polymer Composite for Impact Mitigation,” Smart Materials and Structures 19, no. 3 (2010): 035007.

[329]

G. Li, Self-Healing Composites: Shape Memory Polymer Based Structures (John Wiley & Sons, 2014).

[330]

C. Zeng, H. Seino, J. Ren, K. Hatanaka, and N. Yoshie, “Bio-Based Furan Polymers With Self-Healing Ability,” Macromolecules 46, no. 5 (2013): 1794-1802.

[331]

L. Zedler, M. D. Hager, U. S. Schubert, et al., “Monitoring the Chemistry of Self-Healing by Vibrational Spectroscopy—Current State and Perspectives,” Materials Today 17, no. 2 (2014): 57-69.

[332]

Z. Li, L. Deng, I. A. Kinloch, and R. J. Young, “Raman Spectroscopy of Carbon Materials and Their Composites: Graphene, Nanotubes and Fibres,” Progress in Materials Science 135 (2023): 101089.

[333]

L. Lu, J. Pan, and G. Li, “Recyclable High-Performance Epoxy Based on Transesterification Reaction,” Journal of Materials Chemistry A 5, no. 40 (2017): 21505-21513.

[334]

A. Li, J. Fan, and G. Li, “Recyclable Thermoset Shape Memory Polymers With High Stress and Energy Output via Facile UV-Curing,” Journal of Materials Chemistry A 6, no. 24 (2018): 11479-11487.

[335]

Z. Li, H. Lei, A. Kan, H. Xie, and W. Yu, “Photothermal Applications Based on Graphene and Its Derivatives: A State-of-the-Art Review,” Energy 216 (2021): 119262.

[336]

B. Krishnakumar, R. V. S. Prasanna Sanka, W. H. Binder, et al., “Catalyst Free Self-Healable Vitrimer/Graphene Oxide Nanocomposites,” Composites Part B: Engineering 184 (2020): 107647.

[337]

Y. Hong and T. Miyoshi, “Solid-State NMR Characterization of Polymer Chain Structure and Dynamics in Polymer Crystals,” in Encyclopedia of Polymers and Composites (Springer, 2013).

[338]

D. Davydovich and M. W. Urban, “Water Accelerated Self-Healing of Hydrophobic Copolymers,” Nature Communications 11, no. 1 (2020): 5743.

[339]

B. Gizatullin, O. Neudert, S. Stapf, and C. Mattea, “Dynamic Nuclear Polarization Fast Field Cycling Method for the Selective Study of Molecular Dynamics in Block Copolymers,” Chemphyschem 18, no. 17 (2017): 2347-2356.

[340]

M. Hernández, A. M. Grande, S. van der Zwaag, and S. J. García, “Monitoring Network and Interfacial Healing Processes by Broadband Dielectric Spectroscopy: A Case Study on Natural Rubber,” ACS Applied Materials & Interfaces 8, no. 16 (2016): 10647-10656.

[341]

W. Li, H. Liu, H. Wang, et al., “Biomimetic Hybrid Networks With Excellent Toughness and Self-Healing Ability in the Glassy State,” Chemistry of Materials 35, no. 2 (2023): 682-691.

[342]

H. Kim, J. Lee, S. B. Shim, et al., “Influence of Milled and Acid-Treated Graphene Oxide on the Self-Healing Properties of Graphene Oxide Reinforced Polyurethane,” Composites Part B: Engineering 259 (2023): 110702.

[343]

M. S. Koochaki, R. E. Neisiany, S. N. Khorasani, A. Ashrafi, S. P. Trasatti, and M. Magni, “The Influence of the Healing Agent Characteristics on the Healing Performance of Epoxy Coatings: Assessment of the Repair Process by EIS Technique,” Progress in Organic Coatings 159 (2021): 106431.

[344]

Y. Hao, Y. Zhao, B. Li, L. Song, and Z. Guo, “Self-Healing Effect of Graphene@PANI Loaded With Benzotriazole for Carbon Steel,” Corrosion Science 163 (2020): 108246.

[345]

J. Neuenschwander, R. Furrer, and A. Roemmeler, “Application of Air-Coupled Ultrasonics for the Characterization of Polymer and Polymer-Matrix Composite Samples,” Polymer Testing 56 (2016): 379-386.

[346]

M. Kersemans, I. De Baere, J. Degrieck, et al., “Nondestructive Damage Assessment in Fiber Reinforced Composites With the Pulsed Ultrasonic Polar Scan,” Polymer Testing 34 (2014): 85-96.

[347]

I. Solodov, “Resonant Acoustic Nonlinearity of Defects for Highly-Efficient Nonlinear NDE,” Journal of Nondestructive Evaluation 33, no. 2 (2014): 252-262.

[348]

W. Post, M. Kersemans, I. Solodov, K. Van Den Abeele, S. J. García, and S. van der Zwaag, “Non-Destructive Monitoring of Delamination Healing of a CFRP Composite With a Thermoplastic Ionomer Interlayer,” Composites Part A: Applied Science and Manufacturing 101 (2017): 243-253.

[349]

S. L. Banerjee, R. Hoskins, T. Swift, S. Rimmer, and N. K. Singha, “A Self-Healable Fluorescence Active Hydrogel Based on Ionic Block Copolymers Prepared via Ring Opening Polymerization and Xanthate Mediated RAFT Polymerization,” Polymer Chemistry 9, no. 10 (2018): 1190-1205.

[350]

C.-M. Chung, Y.-S. Roh, S.-Y. Cho, and J.-G. Kim, “Crack Healing in Polymeric Materials via Photochemical [2+2] Cycloaddition,” Chemistry of Materials 16, no. 21 (2004): 3982-3984.

[351]

H. J. Sim, H. Kim, Y. Jang, et al., “Self-Healing Electrode With High Electrical Conductivity and Mechanical Strength for Artificial Electronic Skin,” ACS Applied Materials & Interfaces 11, no. 49 (2019): 46026-46033.

[352]

H. Yu, Y. Feng, L. Gao, C. Chen, Z. Zhang, and W. Feng, “Self-Healing High Strength and Thermal Conductivity of 3D Graphene/PDMS Composites by the Optimization of Multiple Molecular Interactions,” Macromolecules 53, no. 16 (2020): 7161-7170.

[353]

T. Yu, X. , and W. Bao, “High Electrical Self-Healing Flexible Strain Sensor Based on MWCNT-Polydimethylsiloxane Elastomer With High Gauge Factor and Wide Measurement Range,” Composites Science and Technology 238 (2023): 110049.

[354]

N. A. Paolini, A. G. Cordeiro Neto, A. C. Pellanda, et al., “Evaluation of Corrosion Protection of Self-Healing Coatings Containing Tung and Copaiba Oil Microcapsules,” International Journal of Polymer Science no. 1 (2021): 6650499.

[355]

K. Auepattana-Aumrung and D. Crespy, “Self-Healing and Anticorrosion Coatings Based on Responsive Polymers With Metal Coordination Bonds,” Chemical Engineering Journal 452 (2023): 139055.

[356]

C. R. Ratwani, S. Karunarathne, A. R. Kamali, and A. M. Abdelkader, “Transforming Nature's Bath Sponge Into Stacking Faults-Enhanced Ag Nanorings-Decorated Catalyst for Hydrogen Evolution Reaction,” ACS Applied Materials & Interfaces 16, no. 5 (2024): 5847-5856.

[357]

D. Y. Wu, S. Meure, and D. Solomon, “Self-Healing Polymeric Materials: A Review of Recent Developments,” Progress in Polymer Science 33, no. 5 (2008): 479-522.

[358]

C. Lin, D. Sheng, X. Liu, et al., “Effect of Different Sizes of Graphene on Diels-Alder Self-Healing Polyurethane,” Polymer 182 (2019): 121822.

[359]

C.-R. Oh, S.-H. Lee, J.-H. Park, and D.-S. Lee, “Thermally Self-Healing Graphene-Nanoplate/Polyurethane Nanocomposites via Diels-Alder Reaction Through a One-Shot Process,” Nanomaterials 9, no. 3 (2019): 434.

[360]

C. R. Ratwani, “Nanowaste: Tiny Waste That Matters a Lot,” International Journal of Current Research 10 (2018): 70262-70268.

[361]

A. V. Menon, G. Madras, and S. Bose, “The Journey of Self-Healing and Shape Memory Polyurethanes From Bench to Translational Research,” Polymer Chemistry 10, no. 32 (2019): 4370-4388.

[362]

H. Xie, L. Li, C.-Y. Cheng, K.-K. Yang, and Y.-Z. Wang, “Poly(Ethylene-co-Vinyl Acetate)/Graphene Shape-Memory Actuator With a Cyclic Thermal/Light Dual-Sensitive Capacity,” Composites Science and Technology 173 (2019): 41-46.

[363]

X. F. Sánchez-Romate, A. Sans, A. Jiménez-Suárez, and S. G. Prolongo, “The Addition of Graphene Nanoplatelets Into Epoxy/Polycaprolactone Composites for Autonomous Self-Healing Activation by Joule's Heating Effect,” Composites Science and Technology 213 (2021): 108950.

[364]

X. Tong, L. Du, and Q. Xu, “Tough, Adhesive and Self-Healing Conductive 3D Network Hydrogel of Physically Linked Functionalized-Boron Nitride/Clay/Poly(N-Isopropylacrylamide),” Journal of Materials Chemistry A 6, no. 7 (2018): 3091-3099.

[365]

S. Xue, Y. Wu, M. Guo, et al., “Self-Healable Poly(Acrylic Acid-co-Maleic Acid)/Glycerol/Boron Nitride Nanosheet Composite Hydrogels at Low Temperature With Enhanced Mechanical Properties and Water Retention,” Soft Matter 15, no. 18 (2019): 3680-3688.

[366]

A. V. Menon, G. Madras, and S. Bose, “Mussel-Inspired Self-Healing Polyurethane With “Flower-Like” Magnetic MoS2 as Efficient Microwave Absorbers,” ACS Applied Polymer Materials 1, no. 9 (2019): 2417-2429.

[367]

N. Samadi, M. Sabzi, and M. Babaahmadi, “Self-Healing and Tough Hydrogels With Physically Cross-Linked Triple Networks Based on Agar/PVA/Graphene,” International Journal of Biological Macromolecules 107 (2018): 2291-2297.

[368]

L. Xing, C. Hu, Y. Zhang, X. Wang, L. Shi, and R. Ran, “A Mechanically Robust Double-Network Hydrogel With High Thermal Responses via Doping Hydroxylated Boron Nitride Nanosheets,” Journal of Materials Science 54, no. 4 (2019): 3368-3382.

[369]

S. I. Seyed Shahabadi, J. Kong, and X. Lu, “Aqueous-Only, Green Route to Self-Healable, UV-Resistant, and Electrically Conductive Polyurethane/Graphene/Lignin Nanocomposite Coatings,” ACS Sustainable Chemistry & Engineering 5, no. 4 (2017): 3148-3157.

[370]

P. Niu, N. Bao, H. Zhao, et al., “Room-Temperature Self-Healing Elastomer-Graphene Composite Conducting Wires With Superior Strength for Stretchable Electronics,” Composites Science and Technology 219 (2022): 109261.

[371]

L. Wu, M. Fan, M. Qu, et al., “Self-Healing and Anti-Freezing Graphene-Hydrogel-Graphene Sandwich Strain Sensor With Ultrahigh Sensitivity,” Journal of Materials Chemistry B 9, no. 13 (2021): 3088-3096.

[372]

W.-J. Lee and S.-H. Cha, “Improvement of Mechanical and Self-Healing Properties for Polymethacrylate Derivatives Containing Maleimide Modified Graphene Oxide,” Polymers 12, no. 3 (2020): 603.

[373]

D.-W. Yue, H.-Q. Wang, H.-Q. Tao, P. Zheng, C.-H. Li, and J.-L. Zuo, “A Fast and Room-Temperature Self-Healing Thermal Conductive Polymer Composite,” Chinese Journal of Polymer Science 39, no. 10 (2021): 1328-1336.

[374]

H.-Y. Chou and H.-C. Tsai, “Development of Hydrogels With Thermal-Healing Properties Using a Network of Polyvinyl Alcohol and Boron Nitride Composites,” Materials Science and Engineering: C 118 (2021): 111364.

[375]

X. Zhu, W. Zhang, G. Lu, H. Zhao, and L. Wang, “Ultrahigh Mechanical Strength and Robust Room-Temperature Self-Healing Properties of a Polyurethane-Graphene Oxide Network Resulting From Multiple Dynamic Bonds,” ACS Nano 16, no. 10 (2022): 16724-16735.

[376]

B. Krishnakumar, M. Singh, V. Parthasarthy, et al., “Disulfide Exchange Assisted Self-Healing Epoxy/PDMS/Graphene Oxide Nanocomposites,” Nanoscale Advances 2, no. 7 (2020): 2726-2730.

[377]

W. Du, Y. Jin, S. Lai, L. Shi, Y. Shen, and H. Yang, “Multifunctional Light-Responsive Graphene-Based Polyurethane Composites With Shape Memory, Self-Healing, and Flame Retardancy Properties,” Composites Part A: Applied Science and Manufacturing 128 (2020): 105686.

[378]

L. T. Duy and H. Seo, “Eco-Friendly, Self-Healing, and Stretchable Graphene Hydrogels Functionalized With Diol Oligomer for Wearable Sensing Applications,” Sensors and Actuators B: Chemical 321 (2020): 128507.

[379]

S. Xue, G. Liu, J. Lai, et al., “Boron Nitride Nanosheets Strengthened PVA/Borax Hydrogels With Highly Efficient Self-Healing and Rapid pH-Driven Shape Memory Effect,” Macromolecular Materials and Engineering 306, no. 11 (2021): 2100415.

[380]

W. Xu, W. Wang, and S. Chen, “Molybdenum Disulfide (MoS2) Nanosheets-Based Hydrogels With Light-Triggered Self-Healing Property for Flexible Sensors,” Journal of Colloid and Interface Science 586 (2021): 601-612.

[381]

J. Ai, J. Li, K. Li, F. Yu, and J. Ma, “Highly Flexible, Self-Healable and Conductive Poly(Vinyl Alcohol)/Ti3C2Tx MXene Film and It's Application in Capacitive Deionization,” Chemical Engineering Journal 408 (2021): 127256.

[382]

S. Xue, Y. Wu, M. Guo, D. Liu, T. Zhang, and W. Lei, “Fabrication of Poly(Acrylic Acid)/Boron Nitride Composite Hydrogels With Excellent Mechanical Properties and Rapid Self-Healing Through Hierarchically Physical Interactions,” Nanoscale Research Letters 13, no. 1 (2018): 393.

[383]

A. Ma, C. Jiang, M. Li, et al., “Surface-Initiated Photoinduced Electron Transfer ATRP and Mussel-Inspired Chemistry: Surface Engineering of Graphene Oxide for Self-Healing Hydrogels,” Reactive and Functional Polymers 150 (2020): 104547.

[384]

L. Han, X. Lu, M. Wang, et al., “A Mussel-Inspired Conductive, Self-Adhesive, and Self-Healable Tough Hydrogel as Cell Stimulators and Implantable Bioelectronics,” Small 13, no. 2 (2017): 1601916.

[385]

F. B. Kadumudi, M. Hasany, M. K. Pierchala, et al., “The Manufacture of Unbreakable Bionics via Multifunctional and Self-Healing Silk-Graphene Hydrogels,” Advanced Materials 33, no. 35 (2021): 2100047.

[386]

S. Wu, J. Li, G. Zhang, et al., “Ultrafast Self-Healing Nanocomposites via Infrared Laser and Their Application in Flexible Electronics,” ACS Applied Materials & Interfaces 9, no. 3 (2017): 3040-3049.

[387]

C. Zheng, K. Lu, Y. Lu, et al., “A Stretchable, Self-Healing Conductive Hydrogels Based on Nanocellulose Supported Graphene Towards Wearable Monitoring of Human Motion,” Carbohydrate Polymers 250 (2020): 116905.

[388]

J. Chen, K. Zhang, X. Shi, Y. Huang, and B. Jiang, “Bioinspired Polysiloxane/WS2 Composites With Stretchable and Near-Infrared Light Remote-Controlled Self-Healing Abilities for Deployable Deformation Actuators,” Composites Science and Technology 244 (2023): 110297.

[389]

C. Hou, T. Huang, H. Wang, H. Yu, Q. Zhang, and Y. Li, “A Strong and Stretchable Self-Healing Film With Self-Activated Pressure Sensitivity for Potential Artificial Skin Applications,” Scientific Reports 3, no. 1 (2013): 3138.

[390]

E. Dmitrieva, M. Rosenkranz, J. S. Danilova, et al., “Radical Formation in Polymeric Nickel Complexes With N2O2 Schiff Base Ligands: An In Situ ESR and UV-Vis-NIR Spectroelectrochemical Study,” Electrochimica Acta 283 (2018): 1742-1752.

[391]

G. Xin, W. Zhu, Y. Deng, et al., “Microfluidics-Enabled Orientation and Microstructure Control of Macroscopic Graphene Fibres,” Nature Nanotechnology 14, no. 2 (2019): 168-175.

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