TY - JOUR
T1 - 4D-Printed fiber-reinforced liquid crystal elastomer composites for multifunctional soft robots with self-heating actuation
AU - Zhang, Daokang
AU - Tian, Xiaoyong
AU - Zhou, Yanli
AU - Li, Dichen
N1 - Publisher Copyright:
© 2025 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group.
PY - 2025
Y1 - 2025
N2 - Fabrication of flexible actuators with precise deformability, self-heating actuation, and flexibility remain challenging due to limited mechanical properties, sensitivity to ambient temperature, and complexities in multi-material integration. In this study, continuous fibre-reinforced 4D printing technology was employed to fabricate self-heating actuators with precisely controllable deformation characteristics. The integration of continuous carbon fibres not only enhances the mechanical properties of the structure but also enables self-heating through the electrothermal effect of the carbon fibres. By adjusting the applied current, controllable temperatures and deformation curvatures can be achieved, and the thermal response can be achieved within 20 s with a maximum deformation curvature of 0.25 mm−1. Building on this foundation, we drew inspiration from the locomotion patterns of octopuses and inchworms to design a multi-legged soft robot capable of multiple movement modes. The independent control of each leg allows the soft robot to move in all directions, grasping objects weighing up to 20 times its own weight, and moving on 20° inclined surfaces. This study highlights the self-heating deformation capabilities of continuous fibre-reinforced liquid crystal elastomer actuators, showcasing their potential for use in multifunctional soft robotics applications.
AB - Fabrication of flexible actuators with precise deformability, self-heating actuation, and flexibility remain challenging due to limited mechanical properties, sensitivity to ambient temperature, and complexities in multi-material integration. In this study, continuous fibre-reinforced 4D printing technology was employed to fabricate self-heating actuators with precisely controllable deformation characteristics. The integration of continuous carbon fibres not only enhances the mechanical properties of the structure but also enables self-heating through the electrothermal effect of the carbon fibres. By adjusting the applied current, controllable temperatures and deformation curvatures can be achieved, and the thermal response can be achieved within 20 s with a maximum deformation curvature of 0.25 mm−1. Building on this foundation, we drew inspiration from the locomotion patterns of octopuses and inchworms to design a multi-legged soft robot capable of multiple movement modes. The independent control of each leg allows the soft robot to move in all directions, grasping objects weighing up to 20 times its own weight, and moving on 20° inclined surfaces. This study highlights the self-heating deformation capabilities of continuous fibre-reinforced liquid crystal elastomer actuators, showcasing their potential for use in multifunctional soft robotics applications.
KW - 4D printing
KW - Liquid crystal elastomer (LCE)
KW - continuous fibre
KW - programmable actuation
UR - https://www.scopus.com/pages/publications/105004996735
U2 - 10.1080/17452759.2025.2499927
DO - 10.1080/17452759.2025.2499927
M3 - 文章
AN - SCOPUS:105004996735
SN - 1745-2759
VL - 20
JO - Virtual and Physical Prototyping
JF - Virtual and Physical Prototyping
IS - 1
M1 - e2499927
ER -