The vibrational and thermal properties of Mg2Si: Anharmonic effects

IF 2.8 3区 物理与天体物理 Q2 PHYSICS, CONDENSED MATTER
Abdallah Qteish , Maram Amayreh , Nooralhuda Yousuf , Iyad I. Al-Qasir
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引用次数: 0

Abstract

Magnesium silicide is an efficient thermoelectric material with many other technological and industrial applications. Understanding its thermal properties is crucial, yet these fundamental properties remain insufficiently explored both experimentally and theoretically. This work presents the results of a thorough first-principles study of the temperature (T)-dependence of phonon frequencies and thermal properties of Mg2Si. The anharmonic T-dependence of phonon frequencies has been computed, for the first time, using two advanced approaches (temperature dependent effective potential and ab-initio determination of anharmonic phonon peaks). The calculated results are discussed in comparison with each other and with the available experimental data obtained by Raman spectroscopy. A method for enhancing the agreement between calculated and experimental data is proposed. Using a recently developed approach that greatly extends the validity range of the quasi-harmonic approximation, accurate predictions of the thermal properties (namely, thermal expansion, specific heat, and isothermal bulk modulus) of Mg2Si are provided.
Mg2Si的振动和热性质:非调和效应
硅化镁是一种高效的热电材料,具有许多其他技术和工业应用。了解它的热性质是至关重要的,然而这些基本性质在实验和理论上都没有得到充分的探索。这项工作提出了Mg2Si声子频率和热性质对温度(T)依赖性的彻底第一性原理研究的结果。利用两种先进的方法(温度相关有效势和非谐波声子峰的从头算法),首次计算了声子频率的非谐波t依赖关系。对计算结果进行了比较,并与现有的拉曼光谱实验数据进行了比较。提出了一种提高计算数据与实验数据一致性的方法。利用最近开发的一种方法,极大地扩展了准谐波近似的有效性范围,提供了Mg2Si的热性质(即热膨胀,比热和等温体积模量)的准确预测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Physica B-condensed Matter
Physica B-condensed Matter 物理-物理:凝聚态物理
CiteScore
4.90
自引率
7.10%
发文量
703
审稿时长
44 days
期刊介绍: Physica B: Condensed Matter comprises all condensed matter and material physics that involve theoretical, computational and experimental work. Papers should contain further developments and a proper discussion on the physics of experimental or theoretical results in one of the following areas: -Magnetism -Materials physics -Nanostructures and nanomaterials -Optics and optical materials -Quantum materials -Semiconductors -Strongly correlated systems -Superconductivity -Surfaces and interfaces
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