通过声子分析综合DFT研究AgBeCl₃钙钛矿的结构和力学性能、电子、光学、热电行为和动态稳定性

IF 2 3区 化学 Q4 CHEMISTRY, PHYSICAL
Y. Akeb , A. Trad Khodja , S. Anas Boussaa , S. Drablia , R. Boulechfar
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引用次数: 0

摘要

这项工作在全势线性化增广平面波(FP-LAPW)框架内使用密度泛函理论(DFT)对AgBeCl₃钙钛矿材料的结构、机械、电子、光学和热电特性进行了详细的理论研究。研究人员检查了两种立方结构模型,显示出相似的晶格常数和体积模量值,但地层能量(~ 4.85 eV)存在显著差异,这引起了对先前报道数据的担忧。通过计算的弹性常数来确定力学稳定性,B/G比和泊松值表明其具有延性。利用TB-mBJ和PBE-GGA方法进行能带结构分析发现,从布里渊带的M点过渡到Γ点存在约3.36 eV的间接带隙。这与Tauc方法估计的约3.15 eV一致。光吸收光谱表现出强烈的带间跃迁,在6.22和6.47 eV处有明显的峰。热电性能显示出潜力,特别是在中等温度下,尽管高温下的高导热率可能会限制效率。在静水压力下的其他研究显示弹性模量的非线性变化,在2-3 GPa附近观察到最大值。声子色散结果显示沿若干对称路径存在虚频率,表明可能存在动力学不稳定性和结构相变趋势。这些发现为AgBeCl₃提供了第一个全面的理论评价,揭示了它的多功能特性,并突出了与它的稳定性和合成相关的关键问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comprehensive DFT study of AgBeCl₃ perovskite structural and mechanical properties, electronic, optical, thermoelectric behavior, and dynamical stability via phonon analysis
This work presents a detailed theoretical investigation into the structural, mechanical, electronic, optical, and thermoelectric characteristics of the AgBeCl₃ perovskite material using density functional theory (DFT) within the full-potential linearized augmented plane wave (FP-LAPW) framework. Two cubic structural models were examined, showing similar lattice constants and bulk modulus values but notable differences in formation energy (∼4.85 eV), which raises concerns about previously reported data. Mechanical stability is confirmed through calculated elastic constants, with the B/G ratio and Poisson's value indicating a ductile nature. Band structure analysis using TB-mBJ and PBE-GGA approaches reveals an indirect bandgap of approximately 3.36 eV, transitioning from the M to Γ point in the Brillouin zone. This aligns with the Tauc method estimation of around 3.15 eV. The optical absorption spectrum exhibits strong interband transitions with distinct peaks at 6.22 eV and 6.47 eV. Thermoelectric performance shows potential, particularly at moderate temperatures, although high thermal conductivity at elevated temperatures may limit efficiency. Additional studies under hydrostatic pressure reveal non-linear variations in elastic moduli, with maximum values observed near 2–3 GPa. Phonon dispersion results show the presence of imaginary frequencies along several symmetry paths, suggesting possible dynamical instability and a tendency toward structural phase transitions. These findings offer the first comprehensive theoretical evaluation of AgBeCl₃, shedding light on its multifunctional properties and highlighting key issues related to its stability and synthesis.
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来源期刊
Chemical Physics
Chemical Physics 化学-物理:原子、分子和化学物理
CiteScore
4.60
自引率
4.30%
发文量
278
审稿时长
39 days
期刊介绍: Chemical Physics publishes experimental and theoretical papers on all aspects of chemical physics. In this journal, experiments are related to theory, and in turn theoretical papers are related to present or future experiments. Subjects covered include: spectroscopy and molecular structure, interacting systems, relaxation phenomena, biological systems, materials, fundamental problems in molecular reactivity, molecular quantum theory and statistical mechanics. Computational chemistry studies of routine character are not appropriate for this journal.
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