论文标题

增强碳纳米管网络的热电功率因子,并由共插入的微粒排除体积

Boosting Thermoelectric Power Factor of Carbon Nanotube Networks with Excluded Volume by Co-embedded Microparticles

论文作者

Akinboye, Oluwasegun Isaac, Zhang, Yu, Kondapalli, Vamsi Krishna Reddy, Yang, Fan, Shanov, Vesselin, Wu, Yue, Bahk, Je-Hyeong

论文摘要

近年来,嵌入聚合物基质中的碳纳米管(CNT)网络已被广泛研究为一种灵活的热电(TE)传输介质。但是,它们的功率因数在很大程度上受到了CNT与CNT和通过网络传导通道的低密度的相对效率低下的隧道运输的限制。在这项工作中,我们证明,通过在CNT网络中添加电绝观显微镜颗粒可以显着增强功率因数。当将几个微米直径的二氧化硅颗粒共置在单壁CNT-PolyDydim甲基氧烷(PDMS)复合材料中时,电导率和Seebeck系数均同时增强,从而使功率因数提高了六个以上的功率因子。我们发现,二氧化硅微粒将大量复合材料排除在CNT的访问之外,并以聚合物为粘合剂导致CNT网络在它们周围形成,从而改善了CNT的连接性和对齐。我们基于连接隧道运输的理论计算表明,大功率因数增强可以归因于增强的隧道,并且由于CNT之间的连接距离降低,并且由于CNT较高的CNT比对而导致的几何因素增加。由于CNT比对进一步改善,通过样品压缩实现了功率因数的额外增强功率因数超过两倍。

Carbon nanotube (CNTs) networks embedded in polymer matrix have been extensively studied over the recent years as a flexible thermoelectric (TE) transport medium. However, their power factor has been largely limited by the relatively inefficient tunneling transport at junctions between CNTs and the low density of conducting channels through the networks. In this work, we demonstrate that significant enhancement of power factor is possible by adding electrically insulating microscale particles in CNT networks. When silica particles of a few micrometer diameters were co-embedded in single-walled CNT-polydimethylsiloxane (PDMS) composites, both the electrical conductivity and the Seebeck coefficient were simultaneously enhanced, thereby boosting the power factor by more than a factor of six. We find that the silica microparticles excluded a large volume of the composite from the access of CNTs and caused CNT networks to form around them using the polymer as a binder, which in turn resulted in improved connectivity and alignment of CNTs. Our theoretical calculations based on junction tunneling transport show that the large power factor enhancement can be attributed to the enhanced tunneling with reduced junction distance between CNTs and the increased geometric factor due to better CNT alignment. Additional enhancement of power factor by more than a factor of two was achieved by sample compression due to the further improvement of CNT alignment.

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