Flexible Organic Thermoelectric Composites and Devices with Enhanced Performances through Fine-Tuning of Molecular Energy Levels

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Dunxiao Zheng, Jingyang Zhang, Shiyuan Sun, Jianlun Liang, Yu Li, Jiye Luo* and Danqing Liu*, 
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Abstract

Thermoelectric (TE) generators, based on thermoelectric materials, can efficiently convert thermal energy into electricity via the Seebeck effect, showing great promise for waste-heat recovery research. Recent advancements in TE composites of conductive polymer/carbon nanotubes have been significant. This study evaluates the thermoelectric properties of organic TE films and generators by combining naphthalene diimide (NDI) polymers with single-walled carbon nanotubes (SWCNTs). The results reveal that P(NDI-HTO)/SWCNT composite films containing free radicals and alkyl side chains have enhanced thermoelectric properties compared to P(NDI-HT)/SWCNT composite films without free radicals and P(NDI-TP)/SWCNT composite films containing polar side chains. Among them, maximum power factors reach 264.1 ± 21.9 μW m–1 K–2 for p-type and 72.2 ± 1.5 μW m–1 K–2 for n-type composite films, marking increases of 113% and 32%, respectively, over pristine SWCNT films. Furthermore, a flexible thermoelectric generator based on P(NDI-HTO)/SWCNT, with five pairs of p–n junctions, achieves an output voltage of 28.8 mV and an output power of 1.2 μW at a 60 K temperature differential. These improvements in thermoelectric properties are primarily due to the effective modulation of molecular energy levels, enhancing the charge transfer process between NDI polymers and SWCNTs.

Abstract Image

Abstract Image

通过微调分子能级提高性能的柔性有机热电复合材料和器件
基于热电材料的热电(TE)发电机可通过塞贝克效应有效地将热能转化为电能,为废热回收研究带来了巨大前景。最近,导电聚合物/碳纳米管的热电复合材料取得了重大进展。本研究通过将萘二亚胺(NDI)聚合物与单壁碳纳米管(SWCNTs)相结合,评估了有机 TE 薄膜和发电机的热电特性。结果表明,与不含自由基的 P(NDI-HT)/SWCNT 复合薄膜和含极性侧链的 P(NDI-TP)/SWCNT 复合薄膜相比,含有自由基和烷基侧链的 P(NDI-HTO)/SWCNT 复合薄膜具有更强的热电性能。其中,p 型复合薄膜的最大功率因数达到 264.1 ± 21.9 μW m-1 K-2,n 型复合薄膜的最大功率因数达到 72.2 ± 1.5 μW m-1 K-2,分别比原始 SWCNT 薄膜提高了 113% 和 32%。此外,基于 P(NDI-HTO)/SWCNT(具有五对 p-n 结)的柔性热电发生器在 60 K 温差下实现了 28.8 mV 的输出电压和 1.2 μW 的输出功率。这些热电特性的改善主要归功于分子能级的有效调节,从而增强了 NDI 聚合物与 SWCNT 之间的电荷转移过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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