Exploring the properties of quaternary X2NaTlF6 (X = Cs, Rb) halide double perovskite materials for energy conversion, harvesting, and storage using density functional theory

被引:0
|
作者
Gohar Ayub
Mudasser Husain
Nourreddine Sfina
Rajwali Khan
Mohammad Sohail
Hafiza Sumaira Waheed
Muawya Elhadi
Barno Sayfutdinovna Abdullaeva
Nasir Rahman
机构
[1] University of Lakki Marwat,Department of Physics
[2] Peking University,State Key Laboratory of Mesoscopic Physics, Department of Physics
[3] King Khalid University,College of Sciences and Arts in Mahayel Asir, Department of Physics
[4] Riphah International University,Department of Physics
[5] Shaqra University,Department of physics, Faculty of Science and Humanities
[6] Vice-Rector for Scientific Affairs,Department of Mathematics and Information Technologies, Faculty of Mathematics and Physics
[7] Tashkent State Pedagogical University,undefined
来源
Optical and Quantum Electronics | 2024年 / 56卷
关键词
Halide double perovskites; DFT; WIEN2K; Structural properties; Optoelectronic properties; And mechanical properties;
D O I
暂无
中图分类号
学科分类号
摘要
Double perovskites (DPs) have attracted considerable attention for their potential in optoelectronic and thermoelectric applications. In this study, we utilize the WIEN2K code, which relies on density functional theory, to analyze the structural, electronic, mechanical, and optical properties of X2NaTlF6 (X = Cs, Rb). To assess the material’s structural durability, we determine the tolerance factor, and thermodynamic stability is examined through formation energy and phonon calculations. Mechanical stability is confirmed through the relationship between elastic constants, specifically C11 - C12 > 0, C11 > 0, C11 + 2C12 > 0, and B > 0. Furthermore, an analysis of elasticity using the IRelast package reveals their resilience, anisotropic properties, and mechanical stability. The calculated elastic moduli indicate that Rb2NaTlF6 displays ductile behavior, while Cs2NaTlF6 demonstrates brittleness, depending on the specific elastic constant under consideration. Utilizing the modified Beck and Johnson potential (TB-mBJ), we determine band gaps of 1.23 eV for Rb2NaTlF6 and 1.64 eV for Cs2NaTlF6 DPs. Additionally, we investigate optical properties, including refractive index, dielectric constant, and reflectivity, providing further insights into their behavior. Optical property calculations for both compounds suggest their potential suitability for use in optoelectronic devices, particularly LEDs, owing to their UV-Vis range absorption characteristics.
引用
收藏
相关论文
共 40 条
  • [1] Exploring the properties of quaternary X2NaTlF6 (X = Cs, Rb) halide double perovskite materials for energy conversion, harvesting, and storage using density functional theory
    Ayub, Gohar
    Husain, Mudasser
    Sfina, Nourreddine
    Khan, Rajwali
    Sohail, Mohammad
    Waheed, Hafiza Sumaira
    Elhadi, Muawya
    Abdullaeva, Barno Sayfutdinovna
    Rahman, Nasir
    OPTICAL AND QUANTUM ELECTRONICS, 2024, 56 (01)
  • [2] Density functional theory study of halide double perovskites A2KTlX6 (A = Cs, Rb; X = Cl, Br) for photovoltaic applications
    Hasan, Sayed Sahriar
    Akter, Mist Shamima
    Absar, Nazifa
    Rahman, Md Zillur
    Islam, Md Ariful
    Hasan, Md Zahid
    COMPUTATIONAL CONDENSED MATTER, 2025, 42
  • [3] Computational insights of double perovskite X 2 CaCdH 6 (X = Rb and Cs) hydride materials for hydrogen storage applications: A DFT analysis
    Azeem, Waqar
    Hussain, Shoukat
    Shahzad, Muhammad Khuram
    Azad, Fahad
    Khan, Gul
    Tirth, Vineet
    Alqahtani, Hassan
    Algahtani, Ali
    Al-Mughanam, Tawfiq
    Wong, Yew Hoong
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 79 : 514 - 524
  • [4] Electronic transport properties of Rb2AsAuX6 (X = Cl, Br) halide double perovskites for energy harvesting applications
    Adnan, Muhammad
    Ishfaq, Mudassir
    Aldaghfag, Shatha A.
    Misbah
    Yaseen, Muhammad
    Ali, H. Elhosiny
    CHEMICAL PHYSICS LETTERS, 2024, 857
  • [5] Optoelectronic and photovoltaic properties of Cs2AgBiX6 (X = Br, Cl, or I) halide double perovskite for solar cells: Insight from density functional theory
    Absike, Hanan
    Baaalla, Nora
    Lamouri, Rachida
    Labrim, Hicham
    Ez-zahraouy, Hamid
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2022, 46 (08) : 11053 - 11064
  • [6] Thermoelectric and Optoelectronic Properties of Rb2LiMoX6 (X = Br, I) Ferromagnets Using Density Functional Theory
    Peng, Qiong
    Farrukh, Aftab
    Sajid, Muhammad
    Abbas, Jahangir
    Nasarullah, Aboud Ahmed Awadh
    Bahajjaj, Aboud Ahmed Awadh
    Nazar, Mubashir
    Rehman, Javed
    JOURNAL OF INORGANIC AND ORGANOMETALLIC POLYMERS AND MATERIALS, 2024, : 1309 - 1321
  • [7] First-Principles Insights into the Physical Properties of the Complex Halide Double Perovskite Materials Rb2InSbX6 (X = Cl, F)
    Mes-Adi, Hassane
    Bousbih, R.
    Soliman, Mohamed S.
    Murtaza, Sadia
    Al-Hazmi, Gamil A. A. M.
    Shaheen, Mahvish
    Nazar, Mubashir
    JOURNAL OF INORGANIC AND ORGANOMETALLIC POLYMERS AND MATERIALS, 2025,
  • [8] Investigating the physical properties of lead-free halide double perovskites Cs2AgXBr6 (X = P, As, Sb) for photovoltaic and thermoelectric devices using the density functional theory
    Maghrabi, Mufeed
    Al-Reyahi, Anas Y.
    Al Aqtash, Nabil
    Al Azar, Said M.
    Shaheen, Adel
    Mufleh, Ahmad
    Shaban, Bashar
    MATERIALS TODAY COMMUNICATIONS, 2023, 37
  • [9] Exploring the stability, optoelectronic, and thermoelectric properties of Sc-based double perovskites X2ScAgI6 (X = K, Rb, Cs) for renewable energy applications
    Jehangir, Muhammad Awais
    Murtaza, G.
    Albaqami, Munirah D.
    Mohammad, Saikh
    Khan, Shamim
    Israr, Nabeel
    Shafiq, M.
    Shah, Syed Hatim
    COMPUTATIONAL CONDENSED MATTER, 2025, 42
  • [10] Density functional theory based modelling on the physical properties of CsInAgAsX6 (X = Cl, Br) double perovskite for green energy applications
    Manzoor, Mumtaz
    Jamil, Muhammad
    Sehgal, Lakshita
    Sharma, Ramesh
    Ibrahim, Ahmed Ahmed
    MATERIALS TODAY COMMUNICATIONS, 2025, 43