材料科学
塞贝克系数
复合数
热电效应
热电发电机
复合材料
热电材料
电阻率和电导率
导电体
纳米材料
功率密度
光电子学
导电聚合物
电导率
复合薄膜
电压
聚合物
功率因数
纳米技术
溶剂
作者
Yabo Xu,Jingshuang Ma,Zhao Nan,Yanfang Wang,Yaowei Han,Hua Wang,Bo Zhao,Lu Jia
标识
DOI:10.1021/acsapm.5c02162
摘要
Combining the conductive polymer of poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) with two-dimensional nanomaterials is an effective approach to develop a thermoelectric composite film and generator. Herein, we exfoliated n-type few-layer MXene nanosheets and explored the effect of the MXene content on the thermoelectric properties of the composite films prepared by vacuum-assisted filtration. When the MXene content reaches 6 wt %, the Seebeck coefficient improves to 28.5 μV/K with an increase ratio of 43.9%. Additionally, a solvent post-treatment method was employed to address the reduced electrical conductivity of the composite film caused by the MXene incorporation. The power factor of the PEDOT:PSS/6 wt % Ti 3 C 2 T x composite film could be enhanced from 30.1 to 41.3 μW/m K 2 after post-treatment with a dimethyl sulfoxide (DMSO) solvent at 333 K. A six-leg generator fabricated from the DMSO-treated composite film achieves an open-circuit voltage of 2.56 mV and a power density of 42.6 μW/cm 2 under a temperature difference of 30 K. The results reveal the synergy of hybrid and post-treatment and demonstrate that the composite film of PEDOT:PSS/MXene has great potential in wearable thermoelectric fields.
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