TY - JOUR
T1 - Centimeter-Scale Bulk Liquid Crystal Elastomer Artificial Muscle with Strong Mechanical Properties and Designable Complex Shape-Morphing
AU - Song, Juncai
AU - Zhou, Tianfeng
AU - Xiao, Xiang
AU - Zhang, Mingchao
AU - Liu, Peng
AU - Zeng, Xianbing
AU - Duan, Ruijue
AU - Li, Yue
AU - Li, Lei
AU - Xu, Baiqian
AU - Wu, Guanghao
AU - Guo, Yubing
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025/5/28
Y1 - 2025/5/28
N2 - Artificial muscles are regarded as indispensable for next-generation robots. They can mimic the complex motions of living organisms and demonstrate performance surpassing that of natural muscles. Liquid crystal elastomers (LCEs) possess the unique advantage of programmable three-dimensional shape-morphing compared to other soft materials, holding significant promise for artificial muscle applications. However, LCE-based artificial muscle with designable shape-morphing is limited to 100 μm thickness currently, which significantly restricts the driving capability of artificial muscles. Here, we developed the centimeter-scale bulk LCE (CBLCE) artificial muscles with all three dimensions up to centimeter-scale through two-step crosslinking of an LCE with acceptable actuation strain and large modulus, which results in CBLCE artificial muscles with strong mechanical properties. Specifically, this CBLCE demonstrates 37.5% actuation strain (comparable to human skeletal muscles) and strong mechanical properties, such as up to 24 MPa modulus (exceeding that of most powerful natural muscles), large energy density (10 times that of human skeletal muscle), and large output capability (3624 times its gravity). Beyond these remarkable mechanical properties, this artificial muscle further demonstrates designable complex three-dimensional shape-morphing. The developed CBLCEs hold great promise for advancing artificial muscle applications in soft robotics, expanding their potential for broader applications.
AB - Artificial muscles are regarded as indispensable for next-generation robots. They can mimic the complex motions of living organisms and demonstrate performance surpassing that of natural muscles. Liquid crystal elastomers (LCEs) possess the unique advantage of programmable three-dimensional shape-morphing compared to other soft materials, holding significant promise for artificial muscle applications. However, LCE-based artificial muscle with designable shape-morphing is limited to 100 μm thickness currently, which significantly restricts the driving capability of artificial muscles. Here, we developed the centimeter-scale bulk LCE (CBLCE) artificial muscles with all three dimensions up to centimeter-scale through two-step crosslinking of an LCE with acceptable actuation strain and large modulus, which results in CBLCE artificial muscles with strong mechanical properties. Specifically, this CBLCE demonstrates 37.5% actuation strain (comparable to human skeletal muscles) and strong mechanical properties, such as up to 24 MPa modulus (exceeding that of most powerful natural muscles), large energy density (10 times that of human skeletal muscle), and large output capability (3624 times its gravity). Beyond these remarkable mechanical properties, this artificial muscle further demonstrates designable complex three-dimensional shape-morphing. The developed CBLCEs hold great promise for advancing artificial muscle applications in soft robotics, expanding their potential for broader applications.
KW - artificial muscles
KW - bulk liquid crystal elastomers
KW - centimeter-scale liquid crystal elastomers
KW - designable shape-morphing
KW - strong driving capability
UR - http://www.scopus.com/pages/publications/105005203290
U2 - 10.1021/acsami.5c05472
DO - 10.1021/acsami.5c05472
M3 - Article
AN - SCOPUS:105005203290
SN - 1944-8244
VL - 17
SP - 31476
EP - 31486
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 21
ER -