Tuning the electronic and optical properties of the sphalerite by adsorbing halogen and alkali metals

Abstract TThe electronic and optical properties of sphalerite (ZnS) are modulated by adsorbing alkali metals (Li, Na, K, Rb, Cs) and halogen (F, Cl, Br, I, At). Simulations based on density‐functional theory are used to study the electronic and optical properties of pristine sphalerite and alkali‐ha...

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Main Authors: Mohit Tyagi, Sudhanshu Choudhary
Format: Article
Language:English
Published: Wiley 2021-12-01
Series:IET Optoelectronics
Subjects:
Online Access:https://doi.org/10.1049/ote2.12043
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author Mohit Tyagi
Sudhanshu Choudhary
author_facet Mohit Tyagi
Sudhanshu Choudhary
author_sort Mohit Tyagi
collection DOAJ
description Abstract TThe electronic and optical properties of sphalerite (ZnS) are modulated by adsorbing alkali metals (Li, Na, K, Rb, Cs) and halogen (F, Cl, Br, I, At). Simulations based on density‐functional theory are used to study the electronic and optical properties of pristine sphalerite and alkali‐halogen adsorbed sphalerite structures. The results suggest that pristine sphalerite has high absorption in several portions of ultraviolet (UV) region (λ < 250 nm) and negligible absorption in the visible and IR region. The alkali‐halogen adsorbed structure of sphalerite results into red‐shift phenomenon in which an increase in absorption coefficient with wavelength is observed or spectrum shifting towards the red end is observed. Strong absorption for both alkali and halogen adsorbed nanostructures is found throughout the visible zone (~410 to 780 nm) of the spectrum. Bromine adsorbed sphalerite structure results in highest value of absorption in visible region in comparison to other alkali and halogen adsorbed structures. This shift in absorption peaks from UV region to desired visible region range is beneficial for optoelectronic applications and in fabrication of optoelectronics devices such as LED, ARC, solar cells, CRTs and sensors.
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spelling doaj.art-aa290383d8c94dd0ab3cd048d0c1671a2022-12-22T04:14:44ZengWileyIET Optoelectronics1751-87681751-87762021-12-0115627028010.1049/ote2.12043Tuning the electronic and optical properties of the sphalerite by adsorbing halogen and alkali metalsMohit Tyagi0Sudhanshu Choudhary1National Institute of Technology Kurukshetra IndiaNational Institute of Technology Kurukshetra IndiaAbstract TThe electronic and optical properties of sphalerite (ZnS) are modulated by adsorbing alkali metals (Li, Na, K, Rb, Cs) and halogen (F, Cl, Br, I, At). Simulations based on density‐functional theory are used to study the electronic and optical properties of pristine sphalerite and alkali‐halogen adsorbed sphalerite structures. The results suggest that pristine sphalerite has high absorption in several portions of ultraviolet (UV) region (λ < 250 nm) and negligible absorption in the visible and IR region. The alkali‐halogen adsorbed structure of sphalerite results into red‐shift phenomenon in which an increase in absorption coefficient with wavelength is observed or spectrum shifting towards the red end is observed. Strong absorption for both alkali and halogen adsorbed nanostructures is found throughout the visible zone (~410 to 780 nm) of the spectrum. Bromine adsorbed sphalerite structure results in highest value of absorption in visible region in comparison to other alkali and halogen adsorbed structures. This shift in absorption peaks from UV region to desired visible region range is beneficial for optoelectronic applications and in fabrication of optoelectronics devices such as LED, ARC, solar cells, CRTs and sensors.https://doi.org/10.1049/ote2.12043adsorbed layerssemiconductor dopingzinc compoundsII‐VI semiconductorssodiumnanostructured materials
spellingShingle Mohit Tyagi
Sudhanshu Choudhary
Tuning the electronic and optical properties of the sphalerite by adsorbing halogen and alkali metals
IET Optoelectronics
adsorbed layers
semiconductor doping
zinc compounds
II‐VI semiconductors
sodium
nanostructured materials
title Tuning the electronic and optical properties of the sphalerite by adsorbing halogen and alkali metals
title_full Tuning the electronic and optical properties of the sphalerite by adsorbing halogen and alkali metals
title_fullStr Tuning the electronic and optical properties of the sphalerite by adsorbing halogen and alkali metals
title_full_unstemmed Tuning the electronic and optical properties of the sphalerite by adsorbing halogen and alkali metals
title_short Tuning the electronic and optical properties of the sphalerite by adsorbing halogen and alkali metals
title_sort tuning the electronic and optical properties of the sphalerite by adsorbing halogen and alkali metals
topic adsorbed layers
semiconductor doping
zinc compounds
II‐VI semiconductors
sodium
nanostructured materials
url https://doi.org/10.1049/ote2.12043
work_keys_str_mv AT mohittyagi tuningtheelectronicandopticalpropertiesofthesphaleritebyadsorbinghalogenandalkalimetals
AT sudhanshuchoudhary tuningtheelectronicandopticalpropertiesofthesphaleritebyadsorbinghalogenandalkalimetals