材料科学
热电材料
热导率
热电效应
超晶格
兴奋剂
插层(化学)
半导体
电阻率和电导率
单层
塞贝克系数
光电子学
纳米技术
复合材料
无机化学
化学
工程类
物理
电气工程
热力学
作者
Chunlei Wan,Xiaokun Gu,Feng Dang,Tomohiro Itoh,Yifeng Wang,Hitoshi Sasaki,Mami Kondo,Kenji Koga,Kazuhisa Yabuki,G. Jeffrey Snyder,Ronggui Yang,Kunihito Koumoto
出处
期刊:Nature Materials
[Nature Portfolio]
日期:2015-04-03
卷期号:14 (6): 622-627
被引量:674
摘要
Organic semiconductors are attracting increasing interest as flexible thermoelectric materials owing to material abundance, easy processing and low thermal conductivity. Although progress in p-type polymers and composites has been reported, their n-type counterpart has fallen behind owing to difficulties in n-type doping of organic semiconductors. Here, we present an approach to synthesize n-type flexible thermoelectric materials through a facile electrochemical intercalation method, fabricating a hybrid superlattice of alternating inorganic TiS2 monolayers and organic cations. Electrons were externally injected into the inorganic layers and then stabilized by organic cations, providing n-type carriers for current and energy transport. An electrical conductivity of 790 S cm(-1) and a power factor of 0.45 mW m(-1) K(-2) were obtained for a hybrid superlattice of TiS2/[(hexylammonium)x(H2O)y(DMSO)z], with an in-plane lattice thermal conductivity of 0.12 ± 0.03 W m(-1) K(-1), which is two orders of magnitude smaller than the thermal conductivities of the single-layer and bulk TiS2. High power factor and low thermal conductivity contributed to a thermoelectric figure of merit, ZT, of 0.28 at 373 K, which might find application in wearable electronics.
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