Thermo-magnetic soft robot for adaptive locomotion and delivery

Yutong Wang , Shenghao Yang , Chonglei Hao , Binhong Dou , Lei Zhang , Yongle Feng , Shichuan Wang , Fuzhou Niu , Ran Tao , Sen Wang , Bing Li , Zuankai Wang

Droplet ›› 2025, Vol. 4 ›› Issue (3) : e70016

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Droplet ›› 2025, Vol. 4 ›› Issue (3) : e70016 DOI: 10.1002/dro2.70016
RESEARCH ARTICLE

Thermo-magnetic soft robot for adaptive locomotion and delivery

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Abstract

Soft robots based on stimuli-responsive materials, such as those responsive to thermal, magnetic, or light stimuli, hold great potential for adaptive locomotion and multifunctionality in complex environments. Among these, liquid crystal elastomers (LCEs) and magnetic microparticles have emerged as particularly promising candidates, leveraging their thermal responsiveness and magnetic controllability, respectively. However, integrating these modes to achieve synergistic multimodal actuation remains a significant challenge. Here, we present the thermo-magnetic petal morphing robot, which combines LCEs with embedded magnetic microparticles to enable reversible shape morphing via remote light-to-thermal actuation and high-speed rolling locomotion under external magnetic fields. The robot can achieve rapid deformation under near-infrared light, transitioning from a closed spherical to an open cross-like configuration with consistent shape recovery across multiple cycles, and demonstrates a maximum locomotion speed of 30 body lengths per second, outperforming many state-of-the-art soft robots. Moreover, the robot's performance remains robust across dry, wet, and underwater conditions, with adjustable magnetic particle concentrations allowing tunable actuation performance. Our work addresses the need for soft robots with enhanced versatility and adaptability in complex environments, paving the way for applications in areas such as targeted drug delivery and industrial material handling.

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Yutong Wang, Shenghao Yang, Chonglei Hao, Binhong Dou, Lei Zhang, Yongle Feng, Shichuan Wang, Fuzhou Niu, Ran Tao, Sen Wang, Bing Li, Zuankai Wang. Thermo-magnetic soft robot for adaptive locomotion and delivery. Droplet, 2025, 4(3): e70016 DOI:10.1002/dro2.70016

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References

[1]

Cianchetti M, Laschi C, Menciassi A, Dario P. Biomedical applications of soft robotics. Nat Rev Mater. 2018; 3: 143-153.

[2]

Li M, Pal A, Aghakhani A, Pena-Francesch A, Sitti M. Soft actuators for real-world applications. Nat Rev Mater. 2021; 7: 235-249.

[3]

Wang J, Chortos A. Performance metrics for shape-morphing devices. Nat Rev Mater. 2024; 9: 738-751.

[4]

Wen F, Lee C. Water droplets play a role in Internet of Things applications. Droplet. 2024; 3:e133.

[5]

Jiang S, Wu D, Li J, Chu J, Hu Y. Magnetically responsive manipulation of droplets and bubbles. Droplet. 2024; 3:e117.

[6]

Rich SI, Wood RJ, Majidi C. Untethered soft robotics. Nat Electron. 2018; 1: 102-112.

[7]

Wang Y, Liu J, Yang S. Multi-functional liquid crystal elastomer composites. Appl Phys Rev. 2022; 9:011301.

[8]

He Q, Wang Z, Wang Y, Song Z, Cai S. Recyclable and self-repairable fluid-driven liquid crystal elastomer actuator. ACS Appl Mater Interfaces. 2020; 12: 35464-35474.

[9]

Feng W, He Q, Zhang L. Embedded physical intelligence in liquid crystalline polymer actuators and robots. Adv Mater. 2025;37:e2312313.

[10]

White TJ, Broer DJ. Programmable and adaptive mechanics with liquid crystal polymer networks and elastomers. Nat Mater. 2015; 14: 1087-1098.

[11]

Davidson ZS, Shahsavan H, Aghakhani A, et al. Monolithic shape-programmable dielectric liquid crystal elastomer actuators. Sci Adv. 2019; 5:eaay0855.

[12]

Zhao Y, Chi Y, Hong Y, Li Y, Yang S, Yin J. Twisting for soft intelligent autonomous robot in unstructured environments. Proc Natl Acad Sci U S A. 2022; 119:e2200265119.

[13]

Guin T, Settle MJ, Kowalski BA, et al. Layered liquid crystal elastomer actuators. Nat Commun. 2018; 9: 2531.

[14]

Kotikian A, Morales JM, Lu A, et al. Innervated, self-sensing liquid crystal elastomer actuators with closed loop control. Adv Mater. 2021; 33:2101814.

[15]

Maurin V, Chang Y, Ze Q, Leanza S, Wang J, Zhao RR. Liquid crystal elastomer–liquid metal composite: ultrafast, untethered, and programmable actuation by induction heating. Adv Mater. 2024; 36:2302765.

[16]

He Q, Wang Z, Wang Y, Minori A, Tolley MT, Cai S. Electrically controlled liquid crystal elastomer-based soft tubular actuator with multimodal actuation. Sci Adv. 2019; 5:eaax5746.

[17]

Kim H, Lee JA, Ambulo CP, et al. Intelligently actuating liquid crystal elastomer‒carbon nanotube composites. Adv Funct Mater. 2019; 29:1905063.

[18]

Xia Y, Cedillo-Servin G, Kamien RD, Yang S. Guided folding of nematic liquid crystal elastomer sheets into 3D via patterned 1D microchannels. Adv Mater. 2016; 28: 9637-9643.

[19]

Wang Z, Wang Z, Zheng Y, He Q, Wang Y, Cai S. Three-dimensional printing of functionally graded liquid crystal elastomer. Sci Adv. 2020; 6:eabc0034.

[20]

Hu W, Lum GZ, Mastrangeli M, Sitti M. Small-scale soft-bodied robot with multimodal locomotion. Nature. 2018; 554: 81-85.

[21]

Mao G, Schiller D, Danninger D, et al. Ultrafast small-scale soft electromagnetic robots. Nat Commun. 2022; 13: 4456.

[22]

Xu C, Yang Z, Tan SWK, Li J, Lum GZ. Magnetic miniature actuators with six-degrees-of-freedom multimodal soft-bodied locomotion. Adv Intell Syst. 2022; 4:2100259.

[23]

Xia N, Jin B, Jin D, et al. Decoupling and reprogramming the wiggling motion of midge larvae using a soft robotic platform. Adv Mater. 2022; 34:2109126.

[24]

Li G, Zhang T, Shen Y. Transparent magnetic soft millirobot actuated by micro-node array. Adv Mater Technol. 2021; 6:2100131.

[25]

Lu H, Zhang M, Yang Y, et al. A bioinspired multilegged soft millirobot that functions in both dry and wet conditions. Nat Commun. 2018; 9: 3944.

[26]

Zhang J, Guo Y, Hu W, Soon RH, Davidson ZS, Sitti M. Liquid crystal elastomer-based magnetic composite films for reconfigurable shape-morphing soft miniature machines. Adv Mater. 2021; 33:2006191.

[27]

Zhang J, Ren Z, Hu W, et al. Voxelated three-dimensional miniature magnetic soft machines via multimaterial heterogeneous assembly. Sci Rob. 2021; 6:eabf0112.

[28]

Siebenmorgen C, Wang C, Navarro LB, et al. Minimally designed thermo-magnetic dual responsive soft robots for complex applications. J Mater Chem B. 2024; 12: 5339-5349.

[29]

Li Y, Yu H, Yu K, Guo X, Wang X. Reconfigurable three-dimensional mesotructures of spatially programmed liquid crystal elastomers and their ferromagnetic composites. Adv Funct Mater. 2021; 31:2100338.

[30]

Ford MJ, Ambulo CP, Kent TA, et al. A multifunctional shape-morphing elastomer with liquid metal inclusions. Proc Natl Acad Sci U S A. 2019; 116: 21438-21444.

[31]

Kotikian A, McMahan C, Davidson EC, et al. Untethered soft robotic matter with passive control of shape morphing and propulsion. Sci Rob. 2019; 4:eaax7044.

[32]

Lu X, Guo S, Tong X, Xia H, Zhao Y. Tunable photocontrolled motions using stored strain energy in malleable azobenzene liquid crystalline polymer actuators. Adv Mater. 2017; 29:1606467.

[33]

Boothby JM, Gagnon JC, McDowell E, Van Volkenburg T, Currano L, Xia Z. An untethered soft robot based on liquid crystal elastomers. Soft Rob. 2022; 9: 154-162.

[34]

Yang X, Chen Y, Zhang X, et al. Bioinspired light-fueled water-walking soft robots based on liquid crystal network actuators with polymerizable miniaturized gold nanorods. Nano Today. 2022; 43:101419.

[35]

Zeng H, Wani OM, Wasylczyk P, Priimagi A. Light-driven, caterpillar-inspired miniature inching robot. Macromol Rapid Commun. 2018; 39:1700224.

[36]

Zhou X, Chen G, Jin B, et al. Multimodal autonomous locomotion of liquid crystal elastomer soft robot. Adv Sci. 2024; 11:2402358.

[37]

Zhao T, Wang J, Fan Y, Dou W. Helical liquid crystal elastomer miniature robot with photocontrolled locomotion. Adv Mater Technol. 2022; 7:2200222.

[38]

Qian N, Bisoyi HK, Wang M, et al. A visible and near-infrared light-fueled omnidirectional twist-bend crawling robot. Adv Funct Mater. 2023; 33:2214205.

[39]

Wu S, Hong Y, Zhao Y, Yin J, Zhu Y. Caterpillar-inspired soft crawling robot with distributed programmable thermal actuation. Sci Adv. 2023; 9:eadf8014.

[40]

Gu H, Boehler Q, Cui H, et al. Magnetic cilia carpets with programmable metachronal waves. Nat Commun. 2020; 11: 2637.

[41]

Niu H, Feng R, Xie Y, et al. Magworm: a biomimetic magnet embedded worm-like soft robot. Soft Rob. 2021; 8: 507-518.

[42]

Ju Y, Hu R, Xie Y, et al. Reconfigurable magnetic soft robots with multimodal locomotion. Nano Energy. 2021; 87:106169.

[43]

Joyee EB, Pan Y. A fully three-dimensional printed inchworm-inspired soft robot with magnetic actuation. Soft Rob. 2019; 6: 333-345.

[44]

Wang C, Puranam VR, Misra S, Venkiteswaran VK. A snake-inspired multi-segmented magnetic soft robot towards medical applications. IEEE Rob Autom Lett. 2022; 7: 5795-5802.

[45]

Karipoth P, Christou A, Pullanchiyodan A, Dahiya R. Bioinspired inchworm- and earthworm-like soft robots with intrinsic strain sensing. Adv Intell Syst. 2022; 4:2100092.

[46]

Kim Y, Yuk H, Zhao R, Chester SA, Zhao X. Printing ferromagnetic domains for untethered fast-transforming soft materials. Nature. 2018; 558: 274-279.

[47]

Yim S, Sitti M. Design and rolling locomotion of a magnetically actuated soft capsule endoscope. IEEE Trans Rob. 2012; 28: 183-194.

[48]

Huang H-W, Sakar MS, Petruska AJ, Pané S, Nelson BJ. Soft micromachines with programmable motility and morphology. Nat Commun. 2016; 7:12263.

[49]

Ren Z, Hu W, Dong X, Sitti M. Multi-functional soft-bodied jellyfish-like swimming. Nat Commun. 2019; 10: 2703.

[50]

Saed MO, Torbati AH, Nair DP, Yakacki CM. Synthesis of programmable main-chain liquid-crystalline elastomers using a two-stage thiol-acrylate reaction. J Vis Exp. 2016; 19:e53546.

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2025 The Author(s). Droplet published by Jilin University and John Wiley & Sons Australia, Ltd.

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