塞贝克系数
材料科学
热电效应
热电材料
掺杂剂
载流子
带隙
光电子学
兴奋剂
聚合物
电阻率和电导率
功率因数
有机半导体
导电聚合物
费米能级
轨道能级差
凝聚态物理
电荷(物理)
化学物理
电导率
纳米技术
热导率
热电发电机
共轭体系
费米能量
聚苯胺
电势能
电子迁移率
作者
Jingyi Wang,Chengwen Wu,Zhibo Ren,Shuang‐Yan Tian,Qianyu Ding,Xiran Pan,Xin-Yu Deng,Jupeng Chen,Jiatong Li,Juanrong Wang,Chen-Kai Pan,Kai Liu,Jia Zhu,Zhi Zhang,Ting Lei
标识
DOI:10.1002/adma.202512453
摘要
Abstract The conductivity of organic thermoelectric materials has seen significant improvements in the past few years, but often at the expense of the Seebeck coefficient. Consequently, the thermoelectric performance, especially for n‐type materials, remains considerably lower than that of their inorganic counterparts. Herein, a high‐performance n‐type thermoelectric polymer, P(TDPP‐BT‐LEG) is reported, with an unexpectedly high Seebeck coefficient and ultrahigh power factor, driven by its intrinsically large energy gap between the Fermi and transport energy levels and high charge carrier mobility. Notably, it is shown that strong electrostatic interactions induced by the ethylene glycol side chains facilitate charge transfer between the dopants and the polymer. This enables effective doping of polymers with high LUMO levels. Furthermore, efficient charge transport, arising from favorable molecular packing, allows the polymer to maintain high electrical conductivity even at low charge carrier concentrations. Ultimately, this polymer achieves a record‐high n‐type power factor of 397 µW m −1 K −2 , with a high Seebeck coefficient of −420 µV K ‒1 . This study highlights the potential of enhancing the Seebeck coefficient through precise energy level tuning and molecular design, fundamentally advancing the rational design of high‐performance organic thermoelectric materials.
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