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用于柔性和低压加热应用的氯磺酸拉伸碳纳米管片材

Chlorosulfonic Acid Stretched Carbon Nanotube Sheet for Flexible and Low-Voltage Heating Applications.

作者信息

Chen Daniel Rui, Chitranshi Megha, Adusei Paa Kwasi, Schulz Mark, Shanov Vesselin, Cahay Marc M

机构信息

Department of Mechanical and Materials Engineering, University of Cincinnati, Cincinnati, OH 45221, USA.

Department of Electrical Engineering and Computer Science, University of Cincinnati, Cincinnati, OH 45221, USA.

出版信息

Nanomaterials (Basel). 2021 Aug 21;11(8):2132. doi: 10.3390/nano11082132.

Abstract

The carbon nanotube (CNT) is celebrated for its electrothermal property, which indicates the capability of a material to transform electrical energy into heat due to the Joule effect. The CNT nanostructure itself, as a one-dimensional material, limits the electron conduction path, thereby creating a unique heating phenomenon. In this work, we explore the possible correlation between CNT alignment in sheets and heating performance. The alignment of carbon nanotubes is induced by immersion and stretching in chlorosulfonic acid (CSA) solution. The developed CSA-stretched CNT sheet demonstrated excellent heating performance with a fast response rate of 6.5 °C/s and reached 180 °C in less than 30 s under a low voltage of 2.5 V. The heating profile of the stretched CNT sheet remained stable after bending and twisting movements, making it a suitable heating material for wearable devices, heatable smart windows, and in de-icing or defogging applications. The specific strength and specific conductance of the CSA-stretched CNT sheet also increased five- and two-fold, respectively, in comparison to the pristine CNT sheet.

摘要

碳纳米管(CNT)因其电热特性而备受赞誉,这种特性表明材料由于焦耳效应将电能转化为热能的能力。碳纳米管纳米结构本身作为一种一维材料,限制了电子传导路径,从而产生了独特的发热现象。在这项工作中,我们探索了片状碳纳米管排列与加热性能之间的可能关联。碳纳米管的排列是通过浸入氯磺酸(CSA)溶液并拉伸来诱导的。所制备的CSA拉伸碳纳米管片表现出优异的加热性能,响应速度快,为6.5℃/秒,在2.5V的低电压下不到30秒就能达到180℃。拉伸后的碳纳米管片在弯曲和扭转运动后加热曲线保持稳定,使其成为可穿戴设备、可加热智能窗户以及除冰或除雾应用的合适加热材料。与原始碳纳米管片相比,CSA拉伸碳纳米管片的比强度和电导率也分别提高了五倍和两倍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8dc/8398647/6a18e3e9d232/nanomaterials-11-02132-g001.jpg

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