Fu Junsong, Li Yuchen, Zhou Tianzhu, Fang Shaoli, Zhang Mengmeng, Wang Yanlei, Li Kun, Lian Wangwei, Wei Lei, Baughman Ray H, Cheng Qunfeng
School of Chemistry, Key Laboratory of Bio-inspired Smart Interfacial Science and Technology of Ministry of Education, Beihang University, Beijing 100191, China.
School of Chemistry and Materials Science, University of Science and Technology of China, Hefei 230026, China.
Sci Adv. 2025 Jan 10;11(2):eadt1560. doi: 10.1126/sciadv.adt1560. Epub 2025 Jan 8.
Actuation is normally dramatically enhanced by introducing so much yarn fiber twist that the fiber becomes fully coiled. In contrast, we found that usefully high muscle strokes and contractile work capacities can be obtained for non-twisted MXene (TiCT) fibers comprising MXene nanosheets that are stacked in the fiber direction. The MXene fiber artificial muscles are called MFAMs. We obtained MFAMs that have high modulus in both the radial and axial directions by spinning a solution containing MXene nanosheets dispersed in an aqueous cellulose solution. We observed a highly reversible muscle contraction of 21.0% for a temperature increase from 25° to 125°C. The tensile actuation of MFAMs mainly results from reversible hydrogen bond orientation change during heating, which decreases intra-sheet spacing. The MFAMs exhibited fast, stable actuation to multiple temperature-generating stimuli, which increases their applications in smart textiles, robotic arms, and robotic grippers.
通常通过引入大量纱线纤维捻度使纤维完全卷曲,从而显著增强驱动效果。相比之下,我们发现对于由沿纤维方向堆叠的MXene纳米片组成的非捻度MXene(TiCT)纤维,可以获得有用的高肌肉冲程和收缩工作能力。这种MXene纤维人工肌肉被称为MFAMs。我们通过纺丝含有分散在纤维素水溶液中的MXene纳米片的溶液,获得了在径向和轴向上都具有高模量的MFAMs。我们观察到,当温度从25°C升高到125°C时,MFAMs会发生21.0%的高度可逆肌肉收缩。MFAMs的拉伸驱动主要源于加热过程中可逆的氢键取向变化,这会减小片层内间距。MFAMs对多种产生温度的刺激表现出快速、稳定的驱动,这增加了它们在智能纺织品、机器人手臂和机器人夹具中的应用。