材料科学
热电效应
热电材料
铋
可加工性
兴奋剂
制作
合金
冶金
锑
晶界
工程物理
光电子学
微观结构
纳米技术
复合材料
热力学
热导率
医学
物理
替代医学
病理
工程类
机械加工
作者
Haixu Qin,Bo Cui,Wei Wang,Sibo Sun,Dandan Qin,Muchun Guo,Liangjun Xie,Fengkai Guo,Wei Cai,Jiehe Sui
标识
DOI:10.1002/aelm.202100173
摘要
Abstract Bi 2 Te 3 ‐based alloys are the most mature and widely used thermoelectric materials since their z T value has been significantly improved in past decades. However, the poor mechanical strength and machinability derived from the easy cleavage along basal planes not only produce many scraps in the device fabrication process but also lead the devices unstable in the actual service. In this work, a tiny amount of MgB 2 is induced in the Bi 0.4 Sb 1.6 Te 3 alloy to simultaneously enhance the thermoelectric and mechanical properties. In detail, magnesium atoms occupy the bismuth/antimony sites to optimize the carrier concentration and suppress the bipolar effect, pushing the average z T value up to 1.16 ranging from 300 to 500 K, which catches up with the current highest level in p ‐type Bi 2 Te 3 ‐based materials. Moreover, the precipitation phase, boron nanoparticles, distributed at the grain boundaries can effectively improve the compressive strength from 166 to 239 MPa. The prominent thermoelectric and mechanical properties endow the materials with great potential for commercial applications.
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