4.8 Article

Low-Voltage Actuator with Bilayer Structure for Various Biomimetic Locomotions

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 36, 页码 43449-43457

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c14030

关键词

electrical actuator; semicrystalline polymer; shape-memory polymer; biomimetic locomotion; soft robot

资金

  1. National Natural Science Foundation of China [51973142, 21878194]

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This study presents a low-voltage actuator fabricated through spraying and hot pressing, utilizing a high-density conductive network of carbon nanotubes enriched in the surface layer of poly(ethylene-co-vinyl acetate) (EVA). The bilayer CNT/EVA actuator exhibits reversible transformation with over 10% deformation even after 100 cycles, requiring only 15V of applied voltage. This versatile strategy combines electrical properties and shape-memory effects, providing inspiration for the development of electrical soft actuators and biomimetic devices.
Composites based on a shape-memory polymer doped with conductive particles are considered as soft actuators for artificial muscles and robots. Low-voltage actuating is expected to reduce equipment requirement and safety hazards, which requires a highly conductive particle content but weakens the reversible deformation. The spatial distribution of the conductive particle is key to decreasing the actuating voltage and maintaining the reversible deformation. Herein, an approach of fabricating a low-voltage actuator that can perform various biomimetic locomotions by spraying and hot pressing is reported. Carbon nanotubes (CNTs) are enriched inside the surface layer of poly(ethylene-co-vinyl acetate) (EVA) to form a high-density conductive network without degradation of the reversible deformation. The bilayer CNT/EVA actuator exhibits a reversible transformation of more than 10% even with 100 cycles, which requires an applied voltage of just 15 V. Taking advantage of the reprogrammability of the CNT/EVA actuator and reversible shift between the different shapes, different biomimetic locomotions (sample actuator, gripper, and walking robot) are demonstrated without any additional mechanical components. A scheme combining the electrical properties and the shape-memory effect provides a versatile strategy to fabricate low-voltage-actuated polymeric actuators, providing inspiration in the development of electrical soft actuators and biomimetic devices.

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