非谐性
声子
热电效应
热电材料
材料科学
凝聚态物理
热导率
热膨胀
相变
功勋
量子隧道
格子(音乐)
Grüneisen参数
化学物理
热力学
化学
光电子学
物理
复合材料
声学
作者
Sudeshna Samanta,Meenakshi Gusain,Yiming Zhang,Yiqiang Zhan,Hao Zhang,Lin Wang,Shisheng Xiong
出处
期刊:ChemNanoMat
[Wiley]
日期:2022-07-12
卷期号:8 (9)
被引量:7
标识
DOI:10.1002/cnma.202200238
摘要
Abstract Scientists enquire about materials engineered with high nanoparticle densities with reduced thermal conductivity and excellent thermoelectric performance. An emerging mineral, copper sulfide (CuS) promises a novel paradigm in the proximity of pressure‐driven structural phase transitions to tune its functional and mechanical properties. Though CuS is a thermoelectric material with low lattice thermal conductivity ( ), improvement of its remains a challenge to be addressed. Moreover, the underlying mechanism governing pressure‐induced phase transformation and reasons for intrinsically small remains completely unexplored. In this study, by combining in‐situ vibrational spectroscopy and ab initio calculations, we reveal that strong phonon anharmonicity under high pressure and low temperature demonstrates a promising approach to decreasing efficiently and boosts thermoelectric figure of merit by 2.7 times from its ambient value. A large mode Grüneisen parameter and short lifetimes for acoustic phonons contribute significantly to its thermal transport.
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