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N型柔性薄膜及单壁碳纳米管接枝硒化锡纳米晶体复合材料的热电发电机

N-Type Flexible Films and a Thermoelectric Generator of Single-Walled Carbon Nanotube-Grafted Tin Selenide Nanocrystal Composites.

作者信息

Fan Jueshuo, Wang Xiaodong, Liu Fusheng, Chen Zhijun, Chen Guangming

机构信息

College of Materials Science and Engineering, Shenzhen University, Shenzhen 518055, China.

College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.

出版信息

ACS Appl Mater Interfaces. 2021 Jul 7;13(26):30731-30738. doi: 10.1021/acsami.1c07644. Epub 2021 Jun 25.

Abstract

Despite the significant progress in thermoelectric composites in recent years, the enhancement of thermoelectric performance is mainly based on weak interfacial interactions, although strong interactions (such as covalent-bonding grafting) are expected to display a more significant effect. In this study, the thermoelectric composites are prepared using a covalent-bond grafting method between tin selenide (SnSe) and single-walled carbon nanotubes (SWCNTs) via a simple solvothermal process. The as-prepared highly flexible composite film shows an n-type thermoelectric characteristic. An optimized power factor of 58.86 μW m K at room temperature has been realized for the composite film with 16 wt % SWCNT loading. Finally, a flexible thermoelectric generator (TEG) consisting of three couples of p/n films is assembled, which can generate an open-circuit voltage of 15.55 μV and a maximum output power of 1.38 μW at a temperature gradient of 60 K. The results open a new avenue for the fabrication of n-type flexible films and TEG based on covalent-bonding-grafted composites and will benefit the design strategy of high-performance thermoelectric composites and flexible TEGs.

摘要

尽管近年来热电复合材料取得了显著进展,但热电性能的提高主要基于弱界面相互作用,尽管强相互作用(如共价键接枝)预计会显示出更显著的效果。在本研究中,通过简单的溶剂热法,采用硒化锡(SnSe)与单壁碳纳米管(SWCNT)之间的共价键接枝方法制备了热电复合材料。所制备的高度柔性复合薄膜呈现出n型热电特性。对于SWCNT负载量为16 wt%的复合薄膜,在室温下实现了58.86 μW m K的优化功率因子。最后,组装了一个由三对p/n薄膜组成的柔性热电发电机(TEG),在60 K的温度梯度下,该发电机可产生15.55 μV的开路电压和1.38 μW的最大输出功率。这些结果为基于共价键接枝复合材料的n型柔性薄膜和TEG的制造开辟了一条新途径,并将有利于高性能热电复合材料和柔性TEG的设计策略。

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