A study of structure and electronic properties of chalcopyrites semiconductor invoking Density Functional Theory

被引:36
|
作者
Ranjan, Prabhat [1 ]
Kumar, Pancham [2 ]
Chakraborty, Tanmoy [3 ,5 ]
Sharma, Manisha [4 ]
Sharma, Susheela [4 ]
机构
[1] Manipal Univ Jaipur, Dept Mechatron Engn, Jaipur 303007, Rajasthan, India
[2] Bhartiya Skill Dev Univ, Sch Elect Skills, Jaipur Ajmer Rd, Jaipur 302042, Rajasthan, India
[3] Manipal Univ Jaipur, Dept Chem, Jaipur 303007, Rajasthan, India
[4] Bhartiya Skill Dev Univ, Dept Basic Sci, Jaipur Ajmer Rd, Jaipur 302042, Rajasthan, India
[5] Presidency Univ, Sch Engn Itgalpura, Bengaluru Dept Chem, Yelahanka 560064, Bengaluru, India
关键词
Density functional theory; Chalcopyrite semiconductor; Descriptors; Solar cells; INTERMEDIATE-BAND MATERIALS; BORON-TRIFLUORIDE BF3; OPTICAL-PROPERTIES; CHARGE-TRANSFER; SOLAR-CELLS; PHOTOVOLTAIC MATERIAL; PHYSICAL-PROPERTIES; ORBITAL INTERACTION; CRYSTAL-STRUCTURE; BOND FORMATION;
D O I
10.1016/j.matchemphys.2019.122346
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Ternary chalcopyrites, having general formula A(I)B(III)C(2), are of considerable research interest due to their optoelectronic applications as solar energy converters, nonlinear optical devices, light emitting diodes and detectors. In this study, an attempt has been made to correlate optoelectronic properties of CuTiX2 (X = S, Se and Te) with computed Density Functional Theory based electronic descriptors. The ground state configurations and low lying isomers of CuTiX2 (X = S, Se and Te) are analyzed invoking electronic structure theory. Our computed HOMOLUMO energy gap (2.405 eV-3.197 eV) signifies CuTiX2 as potential candidate for solar cell applications. CuTiS2 and CuTiTe2 exhibit the maximum and the minimum energy gap respectively. HOMO-LUMO energy gap maintains an expected trend with DFT based global descriptors. A close agreement between our computed results and experimental data establishes the importance of present study.
引用
收藏
页数:5
相关论文
共 50 条
  • [31] Structure and electronic properties of AunPt (n = 1–8) nanoalloy clusters: the density functional theory study
    Prabhat Ranjan
    Tanmoy Chakraborty
    Journal of Nanoparticle Research, 2020, 22
  • [32] Density functional study of the electronic structure and properties of lithium intercalated graphite
    Bandyopadhyay, D.
    EUROPEAN PHYSICAL JOURNAL D, 2009, 54 (03): : 643 - 655
  • [33] The density functional study of electronic structure and optical properties of gadolinium monophosphate
    Khadraoui, Z.
    Horchani-Naifer, K.
    Ferhi, M.
    Ferid, M.
    CHINESE JOURNAL OF PHYSICS, 2019, 59 : 333 - 339
  • [34] Density functional study of the electronic structure and properties of lithium intercalated graphite
    D. Bandyopadhyay
    The European Physical Journal D, 2009, 54 : 643 - 655
  • [35] DENSITY-FUNCTIONAL THEORY OF ELECTRONIC-STRUCTURE
    PARR, RG
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1994, 207 : 125 - PHYS
  • [36] Developments in the density-functional theory of electronic structure
    Nieminen, RM
    CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 1999, 4 (06): : 493 - 498
  • [37] Density functional theory study of electronic structure and spectra of tetraoxa[8]circulenes
    Minaev, Boris F.
    Baryshnikov, Gleb V.
    Minaeva, Valentina A.
    COMPUTATIONAL AND THEORETICAL CHEMISTRY, 2011, 972 (1-3) : 68 - 74
  • [38] Density Functional Theory Study on Geometric and Electronic Structure of Ti and Its Hydride
    Liu Xiankun
    Liu Ying
    Zheng Zhou
    Dai Junlong
    RARE METAL MATERIALS AND ENGINEERING, 2010, 39 (05) : 832 - 837
  • [39] Density functional theory study of structure stability and electronic structures of β graphyne derivatives
    Chi Bao-Qian
    Liu Yi
    Xu Jing-Cheng
    Qin Xu-Ming
    Sun Chen
    Bai Cheng-Hao
    Liu Yi-Fan
    Zhao Xin-Luo
    Li Xiao-Wu
    ACTA PHYSICA SINICA, 2016, 65 (13)
  • [40] Electronic Properties of SiB Nanoribbons in Density Functional Theory
    Sani, Shahdokht Sohrabi
    Karami, Marzieh
    SILICON, 2022, 14 (04) : 1431 - 1438