Literature DB >> 33510023

Unipolar stroke, electroosmotic pump carbon nanotube yarn muscles.

Hetao Chu1,2, Xinghao Hu1,3, Zhong Wang1,4, Jiuke Mu1, Na Li1,5, Xiaoshuang Zhou6, Shaoli Fang1, Carter S Haines1,7, Jong Woo Park8, Si Qin9, Ningyi Yuan6, Jiang Xu3, Sameh Tawfick10, Hyungjun Kim11,12, Patrick Conlin11, Maenghyo Cho11,12, Kyeongjae Cho11, Jiyoung Oh1, Steven Nielsen4, Kevin A Alberto4, Joselito M Razal9, Javad Foroughi13, Geoffrey M Spinks14, Seon Jeong Kim8, Jianning Ding15,6, Jinsong Leng16, Ray H Baughman17.   

Abstract

Success in making artificial muscles that are faster and more powerful and that provide larger strokes would expand their applications. Electrochemical carbon nanotube yarn muscles are of special interest because of their relatively high energy conversion efficiencies. However, they are bipolar, meaning that they do not monotonically expand or contract over the available potential range. This limits muscle stroke and work capacity. Here, we describe unipolar stroke carbon nanotube yarn muscles in which muscle stroke changes between extreme potentials are additive and muscle stroke substantially increases with increasing potential scan rate. The normal decrease in stroke with increasing scan rate is overwhelmed by a notable increase in effective ion size. Enhanced muscle strokes, contractile work-per-cycle, contractile power densities, and energy conversion efficiencies are obtained for unipolar muscles.
Copyright © 2021 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works.

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Year:  2021        PMID: 33510023     DOI: 10.1126/science.abc4538

Source DB:  PubMed          Journal:  Science        ISSN: 0036-8075            Impact factor:   47.728


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