材料科学
人工肌肉
同轴
导电体
复合材料
制作
执行机构
纳米技术
纳米纤维
纤维
聚合物
极限抗拉强度
芯(光纤)
延伸率
焦耳加热
电导率
静电纺丝
导电的
膜
造型(装饰)
导电聚合物
纳米器件
直流电
生物高聚物
纳米
作者
Xiaohui Cao,Yu Zhao,Yangmin Jing,Wei Gu,Kun Wang,Kerui Li,Chengyi Hou,Yaogang Li,Qinghong Zhang,Hongzhi Wang
摘要
ABSTRACT The burgeoning field of robotics has intensified the demand for advanced flexible actuators with intelligent responsiveness. However, the development of fiber‐shaped artificial muscles capable of reversible bidirectional actuation under multiple stimuli remains a challenge. Herein, we report the continuous fabrication of robust and conductive MXene fibers with oriented surface wrinkles via coaxial wet‐spinning. In this design, carboxymethyl chitosan (CMCS) blended with sodium alginate (SA) serves as the core matrix, while MXene nanosheets constitute the conductive and light‐absorbing shell. Zn 2+ ions act as cross‐linkers in the coagulation bath, reinforcing the interfacial interactions between polymer chains and MXene nanosheets. The CMCS‐SA double‐network significantly enhances both the formation of fibers and their final mechanical properties. The optimized fibers exhibit a tensile stress of up to 231.8 MPa, an elongation at break of 6.2%, and a conductivity of 83.9 S cm −1 . Benefiting from the photothermal and Joule heating effects of MXene and the hygroscopicity of the CMCS‐SA, the coiled artificial muscle fibers demonstrate bidirectional actuation in response to near‐infrared light, direct current electricity, and moisture. Furthermore, these muscle fibers show great potential for applications in textiles, prosthetic arms, and surgical sutures, exhibiting remarkable responsiveness to external stimuli.
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