960化工网
Intrinsic carbon nanotube liquid crystalline elastomer photoactuators for high-definition biomechanics†
Juzhong Zhang,Dandan Sun,Bin Zhang,Qingqing Sun,Yang Zhang,Shuiren Liu,Yaming Wang,Chuntai Liu,Jinzhou Chen,Jingbo Chen,Yanlin Song,Xuying Liu
Materials Horizons Pub Date : 01/18/2022 00:00:00 , DOI:10.1039/D1MH01810H
Abstract

Photoresponsive soft actuators with the unique merits of flexibility, contactless operation, and remote control have huge potential in technological applications of bionic robotics and biomedical devices. Herein, a facile strategy was proposed to prepare an intrinsically-photoresponsive elastomer by chemically grafting carbon nanotubes (CNTs) into a thermally-sensitive liquid-crystalline elastomer (LCE) network. Highly effective dispersion and nematic orientation of CNTs in the intrinsic LCE matrix were observed to yield anchoring energies ranging from 1.65 × 10−5 J m−2 to 5.49 × 10−7 J m−2, which significantly enhanced the mechanical and photothermal properties of the photoresponsive elastomer. When embedding an ultralow loading of CNTs (0.1 wt%), the tensile strength of the LCE increased by 420% to 13.89 MPa (||) and 530% to 3.94 MPa (⊥) and exhibited a stable response to repeated alternating cooling and heating cycles, as well as repeated UV and infrared irradiation. Furthermore, the shape transformation, locomotion, and photo-actuation capabilities allow the CNT/LCE actuator to be applied in high-definition biomechanical applications, such as phototactic flowers, serpentine robots and artificial muscles. This design strategy may provide a promising method to manufacture high-precision, remote-control smart devices.

Graphical abstract: Intrinsic carbon nanotube liquid crystalline elastomer photoactuators for high-definition biomechanics
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