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MXenes对湿度梯度的响应驱动性能:一项系统研究。

Actuation performance of MXenes in response to moisture gradients: A systematic investigation.

作者信息

Su Heng, Liu Chuanfang, Xu Huajun, Qiao He, Xiao Meng, Zhao Zhenxuan, Gao Yu, Liang Hengnan

机构信息

Key Laboratory of Physics and Technology for Advanced Batteries (Ministry of Education), College of Physics, Jilin University, Changchun, 130012, PR China.

School of Materials Science and Engineering, Hunan Provincial Key Lab of Advanced Materials, For New Energy Storage and Conversion, Hunan University of Science and Technology, Xiangtan, 411201, PR China.

出版信息

Talanta. 2025 May 1;286:127349. doi: 10.1016/j.talanta.2024.127349. Epub 2024 Dec 27.

Abstract

Humidity-responsive actuators (HRA) have garnered significant interest across various domains. Since 2020, MXene have been extensively studied for their potential in HRA, demonstrating remarkable performance. Thus far, more than 70 MXene materials have been found. However, no systematic research regarding the distinctions in their applications in the field of HRA has been carried out, limiting the exploration of their broader potential. Herein, a systematic investigation of the HRA performance within the MXene (NbCT, VCT, TiCT, and NbCT) family has been conducted. The influences of atomic layer number, oxygen content, transition metal elements, film thickness, and moisture gradient on the actuation performance are thoroughly examined. It is demonstrated that the number of atomic layers plays an indispensably critical role in both the bending angle and the response/recovery time. NbCT and VCT with fewer atomic layers show excellent performance. At 50 % relative humidity, their maximum bending angles reach 210° and 202° respectively. The HRA are exemplified by the creation of a bionic butterfly and an intelligent switch, showcasing its broad application potential.

摘要

湿度响应型致动器(HRA)已在各个领域引起了广泛关注。自2020年以来,MXene因其在HRA中的潜力而受到广泛研究,展现出卓越的性能。迄今为止,已发现70多种MXene材料。然而,尚未对它们在HRA领域应用中的差异进行系统研究,这限制了对其更广泛潜力的探索。在此,对MXene(NbCT、VCT、TiCT和NbCT)家族中的HRA性能进行了系统研究。深入考察了原子层数、氧含量、过渡金属元素、薄膜厚度和湿度梯度对致动性能的影响。结果表明,原子层数在弯曲角度和响应/恢复时间方面都起着不可或缺的关键作用。原子层数较少的NbCT和VCT表现出优异的性能。在50%相对湿度下,它们的最大弯曲角度分别达到210°和202°。通过制作仿生蝴蝶和智能开关展示了HRA,彰显了其广阔的应用潜力。

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