Перейти к основному содержанию
AkademIndex

Продукты

Для разработчиков

AkademBaseОткрытый API экосистемы
Статья

Opto‐electronic and thermophysical characteristics of <scp>A<sub>2</sub>TlAgF<sub>6</sub></scp> (A = Rb, Cs) for green technology applications

Samah Al‐QaisiPalestinian Ministry of Education and Higher Education Nablus PalestineNazia IramInstitute of Physics Bahauddin Zakariya University Multan PakistanSaidi SamahDepartment of Physics, College of Science and Humanities in Al‐Kharj Prince Sattam Bin Abdulaziz University Al‐Kharj Saudi ArabiaAfaf Khadr AlqorashiDepartment of Physics, Faculty of Science Taif University Taif Saudi ArabiaA.I. AljameelDepartment of Physics, College of Science Imam Mohammad Ibn Saud Islamic University (IMSIU) Riyadh Saudi ArabiaTahani A. AlrebdiDepartment of Physics, College of Science Princess Nourah Bint Abdulrahman University Riyadh Saudi ArabiaZeesham AbbasDepartment of Nanotechnology and Advanced Materials Engineering Sejong University Seoul Republic of KoreaS. BouzgarrouDepartment of Physics, College of Science Qassim University Buraidah Saudi ArabiaMd. Ferdous RahmanAdvanced Energy Materials and Solar Cell Research Laboratory, Department of Electrical and Electronic Engineering Begum Rokeya University Rangpur BangladeshAjay Singh VermaDivision of Research &amp; Innovation, School of Applied and Life Sciences Uttaranchal University Dehradun India
2024en
ABI

Аннотация

Abstract Lead‐free double perovskites are unique materials for transport and optoelectronic applications that use clean resources to generate energy. Using first‐principle computations, this study thoroughly investigates the structural, thermoelectric, and optical attributes of A 2 TlAgF 6 (A = Rb, Cs). Tolerance factor and formation energy estimates are used to verify that these materials exist in the cubic phase. Elastic constants with high melting temperature values are ductile when evaluated for mechanical stability using the Born stability criterion. The optical absorption band is adjusted from 2 to 4 eV via band gaps of 1.88 and 1.99 eV, as indicated by band structures. Analysis of optical properties reveals perfect absorption in the visible spectrum, whole polarization, and low optical loss. Furthermore, thermoelectric properties are assessed at 300, 500, and 700 K in the range of −0.5 to 3 eV for chemical potential ( μ ). The materials exhibit significant improvements in the Figure of Merit scale due to their elevated electrical conductivity, Seebeck coefficient, and extremely low thermal conductivity values.

Перевод пока недоступен

Идентификаторы

Цитирования и источники

Цитирований: 3Использованных источников: 0