Progress in measurement of thermoelectric properties of micro/nano thermoelectric materials: A critical review

热电效应 热电材料 材料科学 塞贝克系数 热导率 热电冷却 微尺度化学 热电发电机 工程物理 纳米技术 复合材料 工程类 数学 热力学 物理 数学教育
作者
Xiao Yang,Chunyang Wang,Rui Lu,Yanan Shen,Haibo Zhao,Jian Li,Ruiyi Li,Lixin Zhang,Haisheng Chen,Ting Zhang,Xinghua Zheng
出处
期刊:Nano Energy [Elsevier BV]
卷期号:101: 107553-107553 被引量:75
标识
DOI:10.1016/j.nanoen.2022.107553
摘要

Thermoelectric materials have attracted extensive attentions due to their extensive applications in thermoelectric refrigeration, waste heat recovery, aerospace and other fields. The effective improvement of thermoelectric properties of thermoelectric materials is of far-reaching significance to broaden their applications. One of the important methods is to improve thermoelectric performance by low dimension and nano-crystallization. Even though small-scale measurement is difficult to conduct, it is very important to accurately measure the thermoelectric properties for micro/nano thermoelectric materials. At present, different methods are used to measure the thermal and electrical parameters. However, using different methods to measure thermoelectric parameters will make measurement error transmission, resulting in large final ZT error. Moreover, transferring samples multiple times during separate measurements for different physical properties can result in impaired surface appearance of microscale samples, thus affecting their intrinsic physical properties. In addition, due to the remarkable difference between the individual samples, it is better to measure all the properties from the same individual sample. Therefore, it is necessary to study the in-suit integrated measurement method. This review summarizes the measurement methods of thermoelectric properties of micro/nano thermoelectric materials, including thermal conductivity, Seebeck coefficient and electrical conductivity. The existing integrated measurement methods of thermoelectric properties for part of micro/nano thermoelectric materials are also summarized. Finally, the difficulties of the integrated measurement methods are proposed and some strategies of the integrated measurement methods which are suitable for one-dimensional nanotubes and two-dimensional films are also prospected.
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