A Theoretical Insight into the Physical Characteristics of Double Perovskite Rb2TlInBr6 for Renewable Energy Applications

IF 1.5 4区 材料科学 Q3 Chemistry
Saif M. H. Qaid, Quratul Ain, Masoofa Akhtar, Hudabia Murtaza, Hamid M. Ghaithan, Abdullah Ahmed Ali Ahmed, Junaid Munir
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Abstract

Metal halide perovskites have gained prominence in optoelectronics recently, thanks to their unique optical and electrical properties, along with their adaptable morphologies. The current work reports the electronic, structural, mechanical, optical, and thermoelectric traits of Rb2TlInBr6 for the very first time. The confirmation of thermodynamic stability is evidenced by the negative value of the formation energy, while structural stability is established by calculating values for the tolerance factor and octahedral tilting. Elastic constants (Cij) and mechanical attributes are evaluated to assess perovskites’ ability to resist external strains. Electronic band structures computed with GGA and mBJ potentials depict a semiconducting nature containing indirect bandgap of 1.8 and 2.42 eV, respectively. Optical characteristics of Rb2TlInBr6 ensure that it can be used effectively for optoelectronic applications. An insight into the thermoelectric characteristic is assessed through BoltzTraP code. The electrical conductivity and ZT reveal the ability of Rb2TlInBr6 to be utilized in green energy devices.

Abstract Image

对用于可再生能源应用的双包晶石 Rb2TlInBr6 物理特性的理论见解
近来,金属卤化物包光体凭借其独特的光学和电学特性以及可适应的形态,在光电子学领域大放异彩。本研究首次报道了 Rb2TlInBr6 的电子、结构、机械、光学和热电特性。形成能的负值证明了热力学稳定性,而结构稳定性则是通过计算公差因子和八面体倾斜度的值确定的。对弹性常数(Cij)和机械属性进行了评估,以评估包晶石抵抗外部应变的能力。利用 GGA 和 mBJ 电位计算得出的电子带结构描绘了一种半导体性质,其间接带隙分别为 1.8 和 2.42 eV。Rb2TlInBr6 的光学特性确保它能有效地用于光电应用。通过 BoltzTraP 代码评估了热电特性。导电性和 ZT 揭示了 Rb2TlInBr6 在绿色能源设备中的应用能力。
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来源期刊
CiteScore
2.50
自引率
6.70%
发文量
121
审稿时长
1.9 months
期刊介绍: The journal Crystal Research and Technology is a pure online Journal (since 2012). Crystal Research and Technology is an international journal examining all aspects of research within experimental, industrial, and theoretical crystallography. The journal covers the relevant aspects of -crystal growth techniques and phenomena (including bulk growth, thin films) -modern crystalline materials (e.g. smart materials, nanocrystals, quasicrystals, liquid crystals) -industrial crystallisation -application of crystals in materials science, electronics, data storage, and optics -experimental, simulation and theoretical studies of the structural properties of crystals -crystallographic computing
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