Dispersion-correction density functional theory (DFT+D) and spin-orbit coupling (SOC) method into the structural, electronic, optical and mechanical properties of CH3NH3PbI3

DFT simulations are used to determine the most appropriate approach to reproduce the experimental electronic structure and optical properties besides providing the reliable structural stability of CH3NH3PbI3. In this work, DFT calculations are performed using the generalized gradient approximation (...

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Published in:Computational Condensed Matter
Main Author: Mohd Zaki N.H.; Ali A.M.M.; Mohamad Taib M.F.; Wan Ismail W.I.N.; Sepeai S.; Ramli A.
Format: Article
Language:English
Published: Elsevier B.V. 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143767229&doi=10.1016%2fj.cocom.2022.e00777&partnerID=40&md5=bdda89f8e32893d7ef75e35d35188e1d
id 2-s2.0-85143767229
spelling 2-s2.0-85143767229
Mohd Zaki N.H.; Ali A.M.M.; Mohamad Taib M.F.; Wan Ismail W.I.N.; Sepeai S.; Ramli A.
Dispersion-correction density functional theory (DFT+D) and spin-orbit coupling (SOC) method into the structural, electronic, optical and mechanical properties of CH3NH3PbI3
2023
Computational Condensed Matter
34

10.1016/j.cocom.2022.e00777
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143767229&doi=10.1016%2fj.cocom.2022.e00777&partnerID=40&md5=bdda89f8e32893d7ef75e35d35188e1d
DFT simulations are used to determine the most appropriate approach to reproduce the experimental electronic structure and optical properties besides providing the reliable structural stability of CH3NH3PbI3. In this work, DFT calculations are performed using the generalized gradient approximation (GGA) that includes spin-orbit coupling (SOC) and empirical pairwise dispersion of the DFT + D method to investigate the structural, electronic, optical and mechanical properties of the material. Our results reveal that SOC effects reduced the band gap compared to GGA functional alone. Meanwhile, using the DFT + D method, an improvement in the calculation accuracy of the band gap obtained (1.689eV) is in excellent agreement with the experimental (1.630eV). Further analysis of the electronic properties demonstrates that including SOC reduces the effective masses of electrons due to the creation of splitting at the bottom of the conduction band. We have presented the absorption coefficient to describe the optical properties. It is found that CH3NH3PbI3 exhibit stronger optical absorption in the UV light region (300–400 nm). The mechanical properties of Young's modulus, bulk modulus, shear modulus and Poisson's ratio were calculated using DFT + D. It was discovered that the ratio (B/G) achieved was greater than 1.75, indicating that CH3NH3PbI3 is a ductile material. © 2022
Elsevier B.V.
23522143
English
Article
All Open Access; Bronze Open Access
author Mohd Zaki N.H.; Ali A.M.M.; Mohamad Taib M.F.; Wan Ismail W.I.N.; Sepeai S.; Ramli A.
spellingShingle Mohd Zaki N.H.; Ali A.M.M.; Mohamad Taib M.F.; Wan Ismail W.I.N.; Sepeai S.; Ramli A.
Dispersion-correction density functional theory (DFT+D) and spin-orbit coupling (SOC) method into the structural, electronic, optical and mechanical properties of CH3NH3PbI3
author_facet Mohd Zaki N.H.; Ali A.M.M.; Mohamad Taib M.F.; Wan Ismail W.I.N.; Sepeai S.; Ramli A.
author_sort Mohd Zaki N.H.; Ali A.M.M.; Mohamad Taib M.F.; Wan Ismail W.I.N.; Sepeai S.; Ramli A.
title Dispersion-correction density functional theory (DFT+D) and spin-orbit coupling (SOC) method into the structural, electronic, optical and mechanical properties of CH3NH3PbI3
title_short Dispersion-correction density functional theory (DFT+D) and spin-orbit coupling (SOC) method into the structural, electronic, optical and mechanical properties of CH3NH3PbI3
title_full Dispersion-correction density functional theory (DFT+D) and spin-orbit coupling (SOC) method into the structural, electronic, optical and mechanical properties of CH3NH3PbI3
title_fullStr Dispersion-correction density functional theory (DFT+D) and spin-orbit coupling (SOC) method into the structural, electronic, optical and mechanical properties of CH3NH3PbI3
title_full_unstemmed Dispersion-correction density functional theory (DFT+D) and spin-orbit coupling (SOC) method into the structural, electronic, optical and mechanical properties of CH3NH3PbI3
title_sort Dispersion-correction density functional theory (DFT+D) and spin-orbit coupling (SOC) method into the structural, electronic, optical and mechanical properties of CH3NH3PbI3
publishDate 2023
container_title Computational Condensed Matter
container_volume 34
container_issue
doi_str_mv 10.1016/j.cocom.2022.e00777
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85143767229&doi=10.1016%2fj.cocom.2022.e00777&partnerID=40&md5=bdda89f8e32893d7ef75e35d35188e1d
description DFT simulations are used to determine the most appropriate approach to reproduce the experimental electronic structure and optical properties besides providing the reliable structural stability of CH3NH3PbI3. In this work, DFT calculations are performed using the generalized gradient approximation (GGA) that includes spin-orbit coupling (SOC) and empirical pairwise dispersion of the DFT + D method to investigate the structural, electronic, optical and mechanical properties of the material. Our results reveal that SOC effects reduced the band gap compared to GGA functional alone. Meanwhile, using the DFT + D method, an improvement in the calculation accuracy of the band gap obtained (1.689eV) is in excellent agreement with the experimental (1.630eV). Further analysis of the electronic properties demonstrates that including SOC reduces the effective masses of electrons due to the creation of splitting at the bottom of the conduction band. We have presented the absorption coefficient to describe the optical properties. It is found that CH3NH3PbI3 exhibit stronger optical absorption in the UV light region (300–400 nm). The mechanical properties of Young's modulus, bulk modulus, shear modulus and Poisson's ratio were calculated using DFT + D. It was discovered that the ratio (B/G) achieved was greater than 1.75, indicating that CH3NH3PbI3 is a ductile material. © 2022
publisher Elsevier B.V.
issn 23522143
language English
format Article
accesstype All Open Access; Bronze Open Access
record_format scopus
collection Scopus
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