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通过嵌入碳纳米管来促进 PEDOT 的双电子和离子输运,以实现大的热电响应。

Promoting Dual Electronic and Ionic Transport in PEDOT by Embedding Carbon Nanotubes for Large Thermoelectric Responses.

机构信息

New Transportation Innovative Research Center , Korea Railroad Research Institute , Uiwang-si , Gyeonggi-do , 16105 Korea.

出版信息

ACS Appl Mater Interfaces. 2018 Jul 18;10(28):23891-23899. doi: 10.1021/acsami.8b06850. Epub 2018 Jul 9.

Abstract

Thermoelectric (TE) energy conversion with nontraditional organic materials is promising in wearable electronics and roll-to-roll manufacturing because of mechanical flexibility, lightweight, and easy processing. Although typical organic materials have a benefit of low thermal conductivity that creates a large temperature gradient, relatively small thermopower (or Seebeck coefficient) often requires copious number of TE legs to fabricate practical TE devices. Here, we show that hybrids of poly(3,4-ethylenedioxythiophene)-tosylate (PEDOT-Tos) and carbon nanotubes (CNTs) can produce extremely large thermopower, ∼14 mV/K at room temperature by a chemical reduction. With decent electrical conductivity, an extraordinary power factor of ∼1200 μW/m K at room temperature was observed. The large power factor could be attributed to prominent dual electronic and ionic conduction, which is likely to be promoted by embedding the CNTs in PEDOT  due to the improvement in the carrier mobility, in comparison with the inferior and widely varying  TE properties of PEDOT-only samples in the literature. While a higher CNT concentration gave a larger electronic contribution, a longer reduction or a lower CNT concentration provided a larger ionic contribution. Meanwhile, well-separated CNTs created CNT junctions intervened by PEDOT-Tos, suppressing the thermal transport. Further research utilizing the high TE responses could greatly help to develop practical wearable and/or mass-producible thermal energy harvesting and storage devices.

摘要

基于其机械灵活性、轻质性和易于加工等优势,利用非传统有机材料的热电(TE)能量转换在可穿戴电子设备和卷对卷制造领域极具应用前景。尽管典型的有机材料具有低热导率的优势,这会产生较大的温度梯度,但相对较小的温差电动势(或塞贝克系数)通常需要大量的 TE 腿来制造实用的 TE 器件。在这里,我们通过化学还原法表明,聚(3,4-亚乙基二氧噻吩)-甲苯磺酸盐(PEDOT-Tos)和碳纳米管(CNTs)的混合物可以产生非常大的温差电动势,在室温下约为 14 mV/K。具有良好的导电性,在室温下观察到非凡的功率因数约为 1200 μW/m K。大的功率因数可能归因于突出的双电子和离子传导,这可能是由于 CNT 嵌入 PEDOT 中而促进的,与文献中 PEDOT 仅样品的较差和变化较大的 TE 性质相比,载流子迁移率得到了提高。虽然更高的 CNT 浓度会产生更大的电子贡献,但更长的还原时间或更低的 CNT 浓度会提供更大的离子贡献。同时,分离良好的 CNT 形成了由 PEDOT-Tos 隔开的 CNT 结,抑制了热传输。进一步研究利用高 TE 响应可以极大地帮助开发实用的可穿戴和/或大规模生产的热能收集和存储设备。

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