Tendril‐Inspired Programmable Liquid Metal Photothermal Actuators for Soft Robots

Author:

Li Xiaofei12,Du Yiming12,Xiao Chao1,Ding Xin1,Pan Xiaoshuan13,Zheng Kang1,Liu Xianglan1,Chen Lin1,Gong Yi1,Xue Meng4,Tian Xingyou12,Zhang Xian12ORCID

Affiliation:

1. Key Lab of Photovoltaic and Energy Conservation Materials Institute of Solid State Physics HFIPS Chinese Academy of Sciences Hefei 230031 China

2. Science Island Branch of Graduate School University of Science and Technology of China Hefei 230026 China

3. Institutes of Physical Science and Information Technology Anhui University Hefei Anhui 230601 China

4. Guangdong Banggu Film Coatings Innovation Academy Co., Ltd Nanxiong 512400 China

Abstract

AbstractPhotothermal actuators are widely applied in robots, smart devices, and bionic systems. However, asymmetric thermal expansion, the most common mechanism for preparing photothermal actuators, has not been utilized in programmable liquid metal photothermal actuators. In this work, Liquid metal/Polyimide/Polytetrafluoroethylene (LM/PI/PTFE) programmable photothermal actuators based on asymmetric thermal expansion are prepared inspired by the climbing plant tendrils. The “protoplasm that can contract and bend” PTFE tape endows the photothermal actuator with programmable initial morphology. The photothermal properties and flexibility of the liquid metal microspheres, together with the significant property difference between PI and PTFE, endow the photothermal actuator with excellent response angles (130.74 ± 6.45°), response speeds (46.62 ± 2.33° s−1), stability (2000 cycles for 10 h), and load‐carrying capacity, which are not inferior to most of the reported PI photothermal actuators. The LM/PI/PTFE photothermal actuator has been successfully modelled and simulated by finite element analysis (FEA). Based on the programmable initial morphology and the simulation by FEA, this work has designed and prepared a variety of bionic systems and functional robots. The work of LM/PI/PTFE photothermal actuators provides a strategy for designing photothermal actuators and enables the future development of photothermal actuators in bionic systems and robots.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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