热电材料
碲化铋
凝聚态物理
晶界
声子散射
材料科学
热电效应
声子
散射
功勋
光电子学
热导率
复合材料
光学
物理
微观结构
热力学
作者
Sang Il Kim,Kyu Hyoung Lee,Hyeon A. Mun,Hyun‐Sik Kim,Sung Woo Hwang,Jong Wook Roh,Dae Jin Yang,Weon Ho Shin,Xiang Shu Li,Young Hee Lee,G. Jeffrey Snyder,Sung Wng Kim
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2015-04-02
卷期号:348 (6230): 109-114
被引量:1773
标识
DOI:10.1126/science.aaa4166
摘要
The widespread use of thermoelectric technology is constrained by a relatively low conversion efficiency of the bulk alloys, which is evaluated in terms of a dimensionless figure of merit (zT). The zT of bulk alloys can be improved by reducing lattice thermal conductivity through grain boundary and point-defect scattering, which target low- and high-frequency phonons. Dense dislocation arrays formed at low-energy grain boundaries by liquid-phase compaction in Bi(0.5)Sb(1.5)Te3 (bismuth antimony telluride) effectively scatter midfrequency phonons, leading to a substantially lower lattice thermal conductivity. Full-spectrum phonon scattering with minimal charge-carrier scattering dramatically improved the zT to 1.86 ± 0.15 at 320 kelvin (K). Further, a thermoelectric cooler confirmed the performance with a maximum temperature difference of 81 K, which is much higher than current commercial Peltier cooling devices.
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