A computational approach to study optoelectronic thermoelectric behavior of ternary zinc Aluminates ZnAl2X4 (X = S, Se, Te) for low-cost energy technologies

IF 2.1 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER
Ramesh Sharma , Mumtaz Manzoor , Sabah Ansar , Yedluri Anil Kumar , Vipul Srivastava
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Abstract

The search for cost-effective, high-performing energy technologies has accelerated the study of new materials possessing exceptional thermoelectric qualities. This work uses a computational method to explore the thermoelectric and optoelectronic properties of ternary compounds with the goal of finding promising candidates for energy-related uses. We employ Boltzmann transport equations and density functional theory (DFT) to methodically examine the optical characteristics, electronic structure, and thermoelectric performance of ZnAl2X4 (X = S, Se, Te) compounds. The band profile reveals a semiconducting nature with direct band gap of 3.41, 3.31, 2.61 eV in ZnAl2S4, ZnAl2Se4 and ZnAl2Te4. Further, the plots of electron localization functions (ELF) provide a clear illustration of the significant hybridization of Zn-d, Al-p, and X-p states observed from the density of states. High values of optical absorbance and conductivities in UV regions confirm strong luminescent properties. The reflectance shows a red shift with increasing size and atomic no. of the chalcogenide atoms. Further, thermoelectric efficiency for these materials is estimated by calculating figure of merit values of 0.97, 0.77 and 0.716 at room temperature. Present study suggests these materials’ suitability for next-generation optical and thermoelectric devices.

研究用于低成本能源技术的三元锌铝酸盐 ZnAl2X4(X = S、Se、Te)光电热电行为的计算方法
为寻求具有成本效益的高性能能源技术,人们加快了对具有优异热电特性的新材料的研究。这项研究采用计算方法探索三元化合物的热电和光电特性,目的是为能源相关用途寻找有前途的候选材料。我们采用波尔兹曼输运方程和密度泛函理论(DFT),有条不紊地研究了 ZnAl2X4(X = S、Se、Te)化合物的光学特性、电子结构和热电性能。带谱显示 ZnAl2S4、ZnAl2Se4 和 ZnAl2Te4 具有半导体性质,直接带隙分别为 3.41、3.31 和 2.61 eV。此外,电子定位功能图(ELF)清楚地说明了从状态密度中观察到的 Zn-d、Al-p 和 X-p 态的显著杂化。紫外区的高光学吸光度和电导率值证实了该物质具有很强的发光特性。反射率随着掺杂原子的尺寸和原子数的增加而发生红移。此外,通过计算室温下 0.97、0.77 和 0.716 的优点值,还估算出了这些材料的热电效率。本研究表明,这些材料适用于下一代光学和热电设备。
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来源期刊
Solid State Communications
Solid State Communications 物理-物理:凝聚态物理
CiteScore
3.40
自引率
4.80%
发文量
287
审稿时长
51 days
期刊介绍: Solid State Communications is an international medium for the publication of short communications and original research articles on significant developments in condensed matter science, giving scientists immediate access to important, recently completed work. The journal publishes original experimental and theoretical research on the physical and chemical properties of solids and other condensed systems and also on their preparation. The submission of manuscripts reporting research on the basic physics of materials science and devices, as well as of state-of-the-art microstructures and nanostructures, is encouraged. A coherent quantitative treatment emphasizing new physics is expected rather than a simple accumulation of experimental data. Consistent with these aims, the short communications should be kept concise and short, usually not longer than six printed pages. The number of figures and tables should also be kept to a minimum. Solid State Communications now also welcomes original research articles without length restrictions. The Fast-Track section of Solid State Communications is the venue for very rapid publication of short communications on significant developments in condensed matter science. The goal is to offer the broad condensed matter community quick and immediate access to publish recently completed papers in research areas that are rapidly evolving and in which there are developments with great potential impact.
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