Rattling vibration-induced low lattice thermal conductivity in Zintl-phase CaLiBi thermoelectrics

声子 非谐性 凝聚态物理 热电材料 带隙 材料科学 热导率 热电效应 声子散射 半导体 电子能带结构 直接和间接带隙 功勋 散射 格子(音乐) 玻尔兹曼方程 电子结构 色散(光学) 宽禁带半导体 联轴节(管道) 热的 晶体结构 化学物理 密度泛函理论 单原子离子 塞贝克系数 Atom(片上系统) 化学
作者
Zhiwei Zhang,H. Wang,Shulin Bai,Da Wan,Peng Ai,Pengfei Zhang,Yunzhuo Zhang,Yujie Bao,Zhanpeng Xu,Shuwei Tang
出处
期刊:Physical Chemistry Chemical Physics [Royal Society of Chemistry]
卷期号:27 (46): 24689-24703 被引量:1
标识
DOI:10.1039/d5cp03610k
摘要

Thermoelectric (TE) materials have gained significant attention as crucial candidates for addressing the escalating challenges associated with environmental pollution and the global energy crisis. Utilizing first-principles calculations and Boltzmann transport theory, the crystal structure and the electronic and thermal transport properties of the CaLiBi compound are explored in the present work. The elastic modulus, ab initio molecular dynamics (AIMD) simulations, and phonon dispersion curves reveal the high mechanical, thermal, and dynamic stabilities of the CaLiBi compound. The CaLiBi compound is an indirect bandgap semiconductor with a bandgap of 0.73 eV in consideration of the Heyd-Scuseria-Ernzerhof (HSE06) functional and spin-orbit coupling (SOC) effect. The presence of multiple valleys in the electronic band structure enhances band degeneracy, which favors the high power factor. The rattling-like vibrations of Li atom produce large atomic displacement parameters, which weaken bonding interactions and induce lattice softening, thereby enhancing stronger anharmonicity. Meanwhile, the weak bonding between light Li and other atoms induces phonon localization, also intensifying both lattice anharmonicity and phonon scattering. Additionally, the flat phonon dispersion curves, especially at medium and high frequencies, reduce phonon group velocity, resulting in the suppression of phonon transport. These combined effects act cooperatively to markedly suppress phonon transport, ultimately resulting in a remarkably low lattice thermal conductivity. Considering multiple carrier scattering mechanisms and three-phonon anharmonic scattering, the CaLiBi compound exhibits promising prospects as an n-type TE material. Consequently, an optimal figure of merit (ZT) of 1.50 is achieved for the n-type CaLiBi compound at 600 K. This work not only offers fundamental insights into the thermal and electronic transport properties of the CaLiBi compound, but also sheds light on the theoretical design of Zintl phase TE materials.
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