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Single-step Precision Programming of Decoupled Multiresponsive Soft Millirobots

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Specialty Science
Date 2024 Mar 21
PMID 38513101
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Abstract

Stimuli-responsive soft robots offer new capabilities for the fields of medical and rehabilitation robotics, artificial intelligence, and soft electronics. Precisely programming the shape morphing and decoupling the multiresponsiveness of such robots is crucial to enable them with ample degrees of freedom and multifunctionality, while ensuring high fabrication accuracy. However, current designs featuring coupled multiresponsiveness or intricate assembly processes face limitations in executing complex transformations and suffer from a lack of precision. Therefore, we propose a one-stepped strategy to program multistep shape-morphing soft millirobots (MSSMs) in response to decoupled environmental stimuli. Our approach involves employing a multilayered elastomer and laser scanning technology to selectively process the structure of MSSMs, achieving a minimum machining precision of 30 μm. The resulting MSSMs are capable of imitating the shape morphing of plants and hand gestures and resemble kirigami, pop-up, and bistable structures. The decoupled multistimuli responsiveness of the MSSMs allows them to conduct shape morphing during locomotion, perform logic circuit control, and remotely repair circuits in response to humidity, temperature, and magnetic field. This strategy presents a paradigm for the effective design and fabrication of untethered soft miniature robots with physical intelligence, advancing the decoupled multiresponsive materials through modular tailoring of robotic body structures and properties to suit specific applications.

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References
1.
Kotikian A, McMahan C, Davidson E, Muhammad J, Weeks R, Daraio C . Untethered soft robotic matter with passive control of shape morphing and propulsion. Sci Robot. 2020; 4(33). DOI: 10.1126/scirobotics.aax7044. View

2.
Liu Y, Chen Z, Han D, Mao J, Ma J, Zhang Y . Bioinspired Soft Robots Based on the Moisture-Responsive Graphene Oxide. Adv Sci (Weinh). 2021; 8(10):2002464. PMC: 8132057. DOI: 10.1002/advs.202002464. View

3.
Dong Y, Wang L, Xia N, Yang Z, Zhang C, Pan C . Untethered small-scale magnetic soft robot with programmable magnetization and integrated multifunctional modules. Sci Adv. 2022; 8(25):eabn8932. PMC: 9217092. DOI: 10.1126/sciadv.abn8932. View

4.
Ren L, Li B, He Y, Song Z, Zhou X, Liu Q . Programming Shape-Morphing Behavior of Liquid Crystal Elastomers via Parameter-Encoded 4D Printing. ACS Appl Mater Interfaces. 2020; 12(13):15562-15572. DOI: 10.1021/acsami.0c00027. View

5.
Wu Z, Moshe M, Greener J, Therien-Aubin H, Nie Z, Sharon E . Three-dimensional shape transformations of hydrogel sheets induced by small-scale modulation of internal stresses. Nat Commun. 2013; 4:1586. DOI: 10.1038/ncomms2549. View