热电效应
材料科学
导电聚合物
纳米技术
灵活性(工程)
电
能量收集
可穿戴计算机
数码产品
导电体
聚合物
热电发电机
热电材料
电气工程
计算机科学
复合材料
能量(信号处理)
工程类
热导率
嵌入式系统
物理
数学
统计
热力学
作者
Geoffrey Prunet,Florent Pawula,Guillaume Fleury,Éric Cloutet,A.J. Robinson,Georges Hadziioannou,Amir Pakdel
标识
DOI:10.1016/j.mtphys.2021.100402
摘要
There is a growing demand for flexible and wearable next-generation electronic devices that must be capable of bending and stretching under mechanical deformation. In this regard, energy harvesting technologies have immensely invested in organic and polymeric semiconducting materials due to their large-area synthesis, low cost, low toxicity, high flexibility, and tunable electronic properties. For example, electrically conductive π-conjugated polymers have been investigated in various thermoelectric technologies for producing stretchable, wearable, and light-weight thermoelectric devices that can harvest energy from a temperature gradient and produce electricity with no pollution or moving parts. In this review we initially provide a general overview of the thermoelectric principles and conductive polymer characteristics, followed by the recent progress in their application in flexible and wearable thermoelectric devices. We also evaluate new advances in manufacturing hybrids of π-conjugated polymers with other polymers, inorganic materials, or carbon nanostructures, and their applications in body energy harvesting and smart cooling.
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