Structural, electronic, and optical properties of lower-dimensional hybrid perovskite lead-iodide frameworks + SOC via density functional theory

Two-dimensional (2D) hybrid metal halide perovskite is receiving more interest today due to being more stable and having a higher surface area-to-volume ratio than 3-dimensional (3D) hybrid metal halide perovskites. To create a 2D structure with high-efficiency properties, the A cation in the parent...

詳細記述

書誌詳細
出版年:Emergent Materials
第一著者: 2-s2.0-85151073103
フォーマット: 論文
言語:English
出版事項: Institute for Ionics 2023
オンライン・アクセス:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85151073103&doi=10.1007%2fs42247-023-00484-1&partnerID=40&md5=2647d56386d5b58300d12e23554b1e1a
id Yami N.F.N.A.; Ramli A.; Nawawi W.I.; Sepeai S.; Safian S.D.; Zaki N.H.M.; Taib M.F.M.; Hassan O.H.; Ali A.M.M.
spelling Yami N.F.N.A.; Ramli A.; Nawawi W.I.; Sepeai S.; Safian S.D.; Zaki N.H.M.; Taib M.F.M.; Hassan O.H.; Ali A.M.M.
2-s2.0-85151073103
Structural, electronic, and optical properties of lower-dimensional hybrid perovskite lead-iodide frameworks + SOC via density functional theory
2023
Emergent Materials
6
3
10.1007/s42247-023-00484-1
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85151073103&doi=10.1007%2fs42247-023-00484-1&partnerID=40&md5=2647d56386d5b58300d12e23554b1e1a
Two-dimensional (2D) hybrid metal halide perovskite is receiving more interest today due to being more stable and having a higher surface area-to-volume ratio than 3-dimensional (3D) hybrid metal halide perovskites. To create a 2D structure with high-efficiency properties, the A cation in the parental 3D structure should be replaced with a bulky organic cation (BOC). So in this study, we aim to investigate the structural, electrical, and optical characteristics of 2D (2-AMP)PbI4 via CASTEP computer code and density functional theory (DFT). The computations utilize the local density approximation (LDA) and the generalized gradient approximation (GGA) techniques. The structural characteristics of GGA-PBEsol demonstrate great agreement with experiment data. The (2-AMP)PbI4 structure consists of corner-sharing PbI64− octahedra separated by alternating sheets of the double-protonated 2-AMP cation. Due to the spin–orbit coupling (SOC) effect, the electronic band gap was reduced from 1.92 to 0.98 eV. According to the partial density of states (PDOS), the Pb-p and I-p bonds supply the most electrons to the band gap. When it comes to optical characteristics, the actual part of the dielectric function reveals that this compound exhibits plasmonic behavior, which increases its capacity to absorb light. The absorption coefficient of (2-AMP)PbI4 shows that this 2D compound able to absorb light in the range of UV and visible light, making it a possible candidate for high-efficiency solar cell devices. © 2023, Qatar University and Springer Nature Switzerland AG.
Institute for Ionics
25225731
English
Article

author 2-s2.0-85151073103
spellingShingle 2-s2.0-85151073103
Structural, electronic, and optical properties of lower-dimensional hybrid perovskite lead-iodide frameworks + SOC via density functional theory
author_facet 2-s2.0-85151073103
author_sort 2-s2.0-85151073103
title Structural, electronic, and optical properties of lower-dimensional hybrid perovskite lead-iodide frameworks + SOC via density functional theory
title_short Structural, electronic, and optical properties of lower-dimensional hybrid perovskite lead-iodide frameworks + SOC via density functional theory
title_full Structural, electronic, and optical properties of lower-dimensional hybrid perovskite lead-iodide frameworks + SOC via density functional theory
title_fullStr Structural, electronic, and optical properties of lower-dimensional hybrid perovskite lead-iodide frameworks + SOC via density functional theory
title_full_unstemmed Structural, electronic, and optical properties of lower-dimensional hybrid perovskite lead-iodide frameworks + SOC via density functional theory
title_sort Structural, electronic, and optical properties of lower-dimensional hybrid perovskite lead-iodide frameworks + SOC via density functional theory
publishDate 2023
container_title Emergent Materials
container_volume 6
container_issue 3
doi_str_mv 10.1007/s42247-023-00484-1
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85151073103&doi=10.1007%2fs42247-023-00484-1&partnerID=40&md5=2647d56386d5b58300d12e23554b1e1a
description Two-dimensional (2D) hybrid metal halide perovskite is receiving more interest today due to being more stable and having a higher surface area-to-volume ratio than 3-dimensional (3D) hybrid metal halide perovskites. To create a 2D structure with high-efficiency properties, the A cation in the parental 3D structure should be replaced with a bulky organic cation (BOC). So in this study, we aim to investigate the structural, electrical, and optical characteristics of 2D (2-AMP)PbI4 via CASTEP computer code and density functional theory (DFT). The computations utilize the local density approximation (LDA) and the generalized gradient approximation (GGA) techniques. The structural characteristics of GGA-PBEsol demonstrate great agreement with experiment data. The (2-AMP)PbI4 structure consists of corner-sharing PbI64− octahedra separated by alternating sheets of the double-protonated 2-AMP cation. Due to the spin–orbit coupling (SOC) effect, the electronic band gap was reduced from 1.92 to 0.98 eV. According to the partial density of states (PDOS), the Pb-p and I-p bonds supply the most electrons to the band gap. When it comes to optical characteristics, the actual part of the dielectric function reveals that this compound exhibits plasmonic behavior, which increases its capacity to absorb light. The absorption coefficient of (2-AMP)PbI4 shows that this 2D compound able to absorb light in the range of UV and visible light, making it a possible candidate for high-efficiency solar cell devices. © 2023, Qatar University and Springer Nature Switzerland AG.
publisher Institute for Ionics
issn 25225731
language English
format Article
accesstype
record_format scopus
collection Scopus
_version_ 1828987865714917376