Design of dual-network structure based on coordination bonds and hydrogen bonds for high-performance multifunctional flexible gel absorbers

Xinyue Xie , Zijing Li , Shusheng Wang , Geng Chen , Limin Zhang , Hongjing Wu

International Journal of Minerals, Metallurgy, and Materials ›› 2026, Vol. 33 ›› Issue (2) : 693 -703.

PDF
International Journal of Minerals, Metallurgy, and Materials ›› 2026, Vol. 33 ›› Issue (2) :693 -703. DOI: 10.1007/s12613-025-3139-1
Research Article
research-article

Design of dual-network structure based on coordination bonds and hydrogen bonds for high-performance multifunctional flexible gel absorbers

Author information +
History +
PDF

Abstract

The emergence of precision electronic devices and wearable electronic products urgently requires high-performance multifunctional electromagnetic wave (EMW) absorbers to meet the applicability and versatility in various applications. Herein, a dual-network (DN) gel was successfully prepared using acrylamide and sodium lignosulphonate as the basic units by simple chemical cross-linking and physical cross-linking methods. Specifically, the hydrogel forms two types of cross-linking networks through metal coordination and hydrogen bonding. Benefiting from the combined effects of dipole polarization and conductivity loss, the gel achieves an effective absorption bandwidth (EAB) of 6.74 GHz at a thickness of only 1.89 mm, demonstrating excellent EMW absorption performance. In addition, this unique structural configuration endows the EMW absorber with multifunctional features, such as remarkable tensile strength, good environmental compatibility, ultraviolet (UV) resistance, and excellent adhesion. Integrating multiple functional features into the EMW gels displays a broad application prospect in a variety of application scenarios. This research reveals the significance of DN structure design in the electromagnetic wave absorption (EWA) performance of gel-based materials, providing a substantial foundation for the multifunctional design of gel-based absorbers.

Keywords

electromagnetic wave absorbers / dual-network structure / polarization loss / hydrogen bonds / coordination bonds / multifunctional characteristics

Cite this article

Download citation ▾
Xinyue Xie, Zijing Li, Shusheng Wang, Geng Chen, Limin Zhang, Hongjing Wu. Design of dual-network structure based on coordination bonds and hydrogen bonds for high-performance multifunctional flexible gel absorbers. International Journal of Minerals, Metallurgy, and Materials, 2026, 33(2): 693-703 DOI:10.1007/s12613-025-3139-1

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Diao KL, Xu YH, Du JYet al.. High toughness and strong electromagnetic shielding properties of PAM/PEG dual network hydrogels. Int. J. Miner. Metall. Mater., 2025, 323747

[2]

D. Lan, H.F. Li, M. Wang, et al., Recent advances in construction strategies and multifunctional properties of flexible electromagnetic wave absorbing materials, Mater. Res. Bull., 171(2024), art. No. 112630.

[3]

Zhang SJ, Li JY, Jin XT, Wu GL. Current advances of transition metal dichalcogenides in electromagnetic wave absorption: A brief review. Int. J. Miner. Metall. Mater., 2023, 303428

[4]

Zhang XC, Zhao ZB, Xu Jet al.. N-doped carbon nanotube arrays on reduced graphene oxide as multifunctional materials for energy devices and absorption of electromagnetic wave. Carbon, 2021, 177: 216

[5]

Sun K, Wang F, Yang WKet al.. Flexible conductive polyimide fiber/MXene composite film for electromagnetic interference shielding and joule heating with excellent harsh environment tolerance. ACS Appl. Mater. Interfaces, 2021, 134250368

[6]

H.L. Lv, Z.H. Yang, H.G. Pan, and R.B. Wu, Electromagnetic absorption materials: Current progress and new frontiers, Prog. Mater. Sci., 127(2022), art. No. 100946.

[7]

Z.H. Zhao, Y.C. Qing, L. Kong, et al., Advancements in microwave absorption motivated by interdisciplinary research, Adv. Mater., 36(2024), No. 4, art. No. 2304182.

[8]

L.L. Zhu, H. Zhang, Z.M. Hu, J.R. Yu, and Y. Wang, Mesoporous MXene nanosheets/CNF composite aerogels for electromagnetic wave absorption and multifunctional response, Chem. Eng. J., 502(2024), art. No. 157770.

[9]

Zhang YF, Zhang L, Zhou BQ, Gao YS, Zhang BL. Polarization-driven multifunctional organohydrogels with strain sensitivity toward electromagnetic wave absorption. Nano Res., 2024, 1765688

[10]

Y.C. Long, Z. Zhang, K. Sun, et al., Enhanced electromagnetic wave absorption performance of hematite@carbon nanotubes/polyacrylamide hydrogel composites with good flexibility and biocompatibility, Adv. Compos. Hybrid Mater., 6(2023), No. 5, art. No. 173.

[11]

M. Qin, L.M. Zhang, X.R. Zhao, and H.J. Wu, Defect induced polarization loss in multi-shelled spinel hollow spheres for electromagnetic wave absorption application, Adv. Sci., 8(2021), No. 8, art. No. 2004640.

[12]

Wang YT, Hui SC, Shi Zet al.. Hydrogen bond-induced conduction loss for enhanced electromagnetic attenuation in deep eutectic gel absorbers. Int. J. Miner. Metall. Mater., 2025, 323738

[13]

Jiang MT, Wang S, Xu Pet al.. Highly flexible hydrogels with readily adjustable electromagnetic parameter for efficient electromagnetic wave absorption. ACS Appl. Nano Mater., 2024, 71416488

[14]

Z.F. Yang, R.K. Huang, B.N. Zheng, et al., Highly stretchable, adhesive, biocompatible, and antibacterial hydrogel dressings for wound healing, Adv. Sci., 8(2021), No. 8, art. No. 2003627.

[15]

T.A. Schieber, L.C. Carpi, P.M. Pardalos, C. Masoller, A. Díaz-Guilera, and M.G. Ravetti, Diffusion capacity of single and interconnected networks, Nat. Commun., 14(2023), No. 1, art. No. 2217.

[16]

Guan QF, Han ZM, Yang KPet al.. Sustainable double-network structural materials for electromagnetic shielding. Nano Lett., 2021, 2162532

[17]

M. He, X.L. Lv, Z.H. Li, et al., Research on efficient electromagnetic shielding performance and modulation mechanism of aero/organo/hydrogels with gravity-induced asymmetric gradient structure, Small, 20(2024), No. 51, art. No. 2403210.

[18]

P. Xu, Z.J. Shang, M.L. Yao, Z.Y. Ke, X.X. Li, and P.D. Liu, Molecular insights on the mechanical properties of double-network hydrogels reinforced by covalently compositing with silica-nanoparticles, J. Mol. Liq., 368(2022), art. No. 120611.

[19]

Y.L. Liu, W.Z. Geng, L.N. Wang, et al., Designing MXene hydrogels for flexible and high-efficiency electromagnetic wave absorption using digital light processing 3D printing, Chem. Eng. J., 505(2025), art. No. 159489.

[20]

Lv ZL, Xu JK, Li CYet al.. pH-responsive lignin hydrogel for lignin fractionation. ACS Sustainable Chem. Eng., 2021, 94113972

[21]

Wu SM, Wang CJ, Tang YXet al.. Metal–organic framework-derived hierarchical Cu9S5/C nanocomposite fibers for enhanced electromagnetic wave absorption. Adv. Fiber Mater., 2024, 62430

[22]

Y.H. Fang, C. Liang, V. Liljeström, Z.P. Lv, O. Ikkala, and H. Zhang, Toughening hydrogels with fibrillar connected double networks, Adv. Mater., 36(2024), No. 27, art. No. 2402282.

[23]

H.Y. Hou, T.T. Yang, Y.R. Zhao, et al., Janus nanoparticle coupled double-network hydrogel, Macromol. Rapid Commun., 43(2022), No. 17, art. No. 2200157.

[24]

Zhi H, Wang FY, Zhang XBet al.. pH-sensitive, highly stretchable, and hydrogen bond-dominated ionogel for wound healing activity. ACS Appl. Bio Mater., 2024, 71498

[25]

Q. Chang, Z.J. Xie, S.Z. Yang, Y.J. Duan, B. Shi, and H.J. Wu, Surfactant-induced morphology engineering in chitosan-derived carbon aerogels realizing high-efficiency absorption of electromagnetic wave, J. Alloy. Compd., 995(2024), art. No. 174808.

[26]

Zhang XF, Ma XF, Hou Tet al.. Inorganic salts induce thermally reversible and anti-freezing cellulose hydrogels. Angew. Chem. Int. Ed., 2019, 58227366

[27]

Wang YJ, Li CY, Wang ZJet al.. Hydrogen bond-reinforced double-network hydrogels with ultrahigh elastic modulus and shape memory property. J. Polym. Sci. Part B, 2018, 56191281

[28]

Z. Cao, H. Wu, M.X. Yang, Z. Li, X. Chen, and L. Liu, Tunable H-bond effects enabled ionic conductive gels with high stretchability, transparency, self-adhesion and wide environmental tolerance for e-skin, React. Funct. Polym., 199(2024), art. No. 105901.

[29]

Chen TD, Mai XX, Ma LM, Li ZP, Wang JQ, Yang SR. Poly (vinyl alcohol)/gelatin-based eutectogels for the sensitive strain sensor with recyclability and multienvironmental suitability. ACS Appl. Polym. Mater., 2022, 453982

[30]

J.H. Lin and X.S. Du, Self-healable and redox active hydrogel obtained via incorporation of ferric ion for supercapacitor applications, Chem. Eng. J., 446(2022), art. No. 137244.

[31]

Espina A, Cañamares MV, Jurašeková Z, Sanchez-Cortes S. Analysis of iron complexes of tannic acid and other related polyphenols as revealed by spectroscopic techniques: Implications in the identification and characterization of iron gall inks in historical manuscripts. ACS Omega, 2022, 73227937

[32]

Wang XH, Song F, Qian Det al.. Strong and tough fully physically crosslinked double network hydrogels with tunable mechanics and high self-healing performance. Chem. Eng. J., 2018, 349: 588

[33]

Zhang Z, Wang XL, Wang YT, Hao JC. Rapid-forming and self-healing agarose-based hydrogels for tissue adhesives and potential wound dressings. Biomacromolecules, 2018, 193980

[34]

H. Ren, Z. Zhang, X.L. Cheng, Z. Zou, X.S. Chen, and C.L. He, Injectable, self-healing hydrogel adhesives with firm tissue adhesion and on-demand biodegradation for sutureless wound closure, Sci. Adv., 9(2023), No. 33, art. No. eadh4327.

[35]

L.T. Fang, C. Zhang, W.J. Ge, et al., Facile spinning of tough and conductive eutectogel fibers via Li+-induced dense hydrogen-bond networks, Chem. Eng. J., 478(2023), art. No. 147405.

[36]

Y.J. Liang, K.F. Wang, J.J. Li, et al., Low-molecular-weight supramolecular-polymer double-network eutectogels for self-adhesive and bidirectional sensors, Adv. Funct. Mater., 31(2021), No. 45, art. No. 2104963.

[37]

Y.N. Shi, Z. Ma, X. Zhang, et al., Flexible film constructed by asymmetrically-coordinated La1N4Cl1 moieties on interconnected nitrogen-doped graphene nanocages for high-efficiency electromagnetic wave absorption, Adv. Funct. Mater., 34(2024), No. 16, art. No. 2313483.

[38]

An X, Sun ZX, Shen JHet al.. Heterogeneous interface enhanced polyurethane/MXene@Fe3O4 composite elastomers for electromagnetic wave absorption and thermal conduction. Int. J. Miner. Metall. Mater., 2025, 323728

[39]

D.L. Tan, C.H. Xu, G.N. Chen, et al., Charge-transfer states disclosed by first-principles calculations in core-shell carbon fiber@Ni and exploration of its microscopic electromagnetic loss mechanism, Carbon, 234(2025), art. No. 119931.

[40]

Z.X. Wu, H. Wang, Q.L. Ding, et al., A self-powered, rechargeable, and wearable hydrogel patch for wireless gas detection with extraordinary performance, Adv. Funct. Mater., 33(2023), No. 21, art. No. 2300046.

[41]

X. Wang, X.M. Chen, Q.Y. He, et al., Bidirectional, multilayer MXene/polyimide aerogels for ultra-broadband microwave absorption, Adv. Mater., 36(2024), No. 36, art. No. 2401733.

[42]

Y.H. Cui, G.L. Ru, T.Y. Zhang, et al., Schottky interface engineering in Ti3C2T,/ZnS organic hydrogels for high-performance multifunctional flexible absorbers, Adv. Funct. Mater., 35(2025), No. 11, art. No. 2417346.

[43]

Z.W. Qin, Y. Yang, H.Y. Mi, et al., Hierarchical H-bonding and metal coordination bonds enabled supramolecular dual networks for high-performance energy-dissipation, Chem. Eng. J., 498(2024), art. No. 155414.

[44]

Quan B, Liang XH, Ji GBet al.. Dielectric polarization in electromagnetic wave absorption: Review and perspective. J. Alloy. Compd, 2017, 728: 1065

[45]

Y.F. Zhang, C.Y. Cai, F.F. Li, and S.Y. Dong, Supramolecular soft material enabled by metal coordination and hydrogen bonding: Stretchability, self-healing, impact resistance, 3D printing, and motion monitoring, Small, 19(2023), No. 30, art. No. 2300857.

[46]

D.L. Tan, Q. Wang, M.R. Li et al., Magnetic media synergistic carbon fiber@Ni/NiO composites for high-efficiency electromagnetic wave absorption, Chem. Eng. J., 492(2024), art. No. 152245.

[47]

Z.R. Chen, C. Zhang, Y. Zhu, J.R. Zou, and Y.X. Chen, Enhanced electromagnetic wave absorption in ultrathin cement-based composites with integrated multi-dimensional carbon materials, Constr. Build. Mater., 432(2024), art. No. 136595.

[48]

H. Chen, J. Yang, Z.Z. Liu, et al., Fault-tolerant and on-demand supra tough adhesive natural albumin-based organohydrogels, Adv. Funct. Mater., 35(2025), No. 2, art. No. 2413171.

[49]

R.J. Song, X.Y. Wang, M. Johnson, et al., Enhanced strength for double network hydrogel adhesive through cohesion-adhesion balance, Adv. Funct. Mater., 34(2024), No. 23, art. No. 2313322.

[50]

Y. Qian, Y.J. Zhou, M.J. Lu, et al., Direct construction of catechol lignin for engineering long-acting conductive, adhesive, and UV-blocking hydrogel bioelectronics, Small Methods, 5(2021), No. 5, art. No. 2001311.

[51]

H. Cui, W.K. Jiang, C. Wang, et al., Lignin nanofiller-reinforced composites hydrogels with long-lasting adhesiveness, toughness, excellent self-healing, conducting, ultraviolet-blocking and antibacterial properties, Composites Part B, 225(2021), art. No. 109316.

[52]

S. Gu, G.R. Cheng, T.Y. Yang, X.Y. Ren, and G.H. Gao, Mechanical and rheological behavior of hybrid cross-linked polyacrylamide/cationic micelle hydrogels, Macromol. Mater. Eng., 302(2017), No. 12, art. No. 1700402.

[53]

G.Z. Guo, C.C. Ji, H.Y. Mi, et al., Zincophilic anionic hydrogel electrolyte with interfacial specific adsorption of solvation structures for durable zinc ion hybrid supercapacitors, Adv. Funct. Mater., 34(2024), No. 2, art. No. 2308405.

[54]

Sun D, Li N, Rao Jet al.. Ultrafast fabrication of organohydrogels with UV-blocking, anti-freezing, anti-drying, and skin epidermal sensing properties using lignin-Cu2+ plant catechol chemistry. J. Mater. Chem. A, 2021, 92514381

[55]

Tran MH, Phan DP, Lee EY. Review on lignin modifications toward natural UV protection ingredient for lignin-based sunscreens. Green Chem., 2021, 23134633

[56]

Huo HX, Shi HR, Yang HXet al.. A conductive hydrogel with excellent self-adhesion, sensitivity, and stability for wearable strain sensors to monitor human motion. J. Mater. Chem. A, 2024, 124027506

[57]

Wang CH, Yang BB, Xiang RH, Ji JY, Wu Y, Tan S. High-saline-enabled hydrophobic homogeneous cross-linking for extremely soft, tough, and stretchable conductive hydrogels as high-sensitive strain sensors. ACS Nano, 2023, 172223194

[58]

Y. Yi, X.H. Chen, S.Y. Feng, B.X. Chen, C.H. Lu, and Z.H. Zhou, Phase separation-regulated fabrication of MXene/PVA cryogel sensor with effective electromagnetic interference shielding, Composites Part A, 175(2023), art. No. 107793.

RIGHTS & PERMISSIONS

University of Science and Technology Beijing

PDF

5

Accesses

0

Citation

Detail

Sections
Recommended

/