A DFT study of the chemical and optical properties of 7-atom Ag-X [X = Li, Na] nanoalloys for potential applications in opto-electronics and catalysis

In this paper, Ag atoms are substituted by X (Li, Na) atoms to form AgmX(7-m) clusters to explore their electronic, chemical and optical properties in the framework of density functional theory (DFT). The clusters are geometrically optimized without imposing symmetry and later, vibrational analysis...

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Published in:RSC Advances
Main Author: Debnath S.; Said S.M.; Rabilloud F.; Chatterjee A.; Roslan M.F.; Mainal A.; Mahmood M.S.
Format: Article
Language:English
Published: Royal Society of Chemistry 2015
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84948425985&doi=10.1039%2fc5ra12428j&partnerID=40&md5=62303f23581059d9e6679d2dc1cd9d65
id 2-s2.0-84948425985
spelling 2-s2.0-84948425985
Debnath S.; Said S.M.; Rabilloud F.; Chatterjee A.; Roslan M.F.; Mainal A.; Mahmood M.S.
A DFT study of the chemical and optical properties of 7-atom Ag-X [X = Li, Na] nanoalloys for potential applications in opto-electronics and catalysis
2015
RSC Advances
5
119
10.1039/c5ra12428j
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84948425985&doi=10.1039%2fc5ra12428j&partnerID=40&md5=62303f23581059d9e6679d2dc1cd9d65
In this paper, Ag atoms are substituted by X (Li, Na) atoms to form AgmX(7-m) clusters to explore their electronic, chemical and optical properties in the framework of density functional theory (DFT). The clusters are geometrically optimized without imposing symmetry and later, vibrational analysis is carried out to test the stability of the optimized structures. The calculation of ionization potential and electron affinity asserted that the Li and Na doped bimetallic clusters (especially, Ag4Li3 and Ag3Li4) are very stable in the neutral state, but their anions are expected to be very reactive. The calculated absorption spectra of the AgmX7-m clusters have revealed that the doping of Li and Na has made the absorption band wider with regards to undoped Ag7 clusters. Therefore, this work suggests that Li and Na doping (especially, Ag4X3, Ag3X4 and Ag2X5 clusters) will result in improvement of the absorption band in the 1-5 eV range, which is the prime absorption band for opto-electronic devices such as solar cells. © The Royal Society of Chemistry 2015.
Royal Society of Chemistry
20462069
English
Article

author Debnath S.; Said S.M.; Rabilloud F.; Chatterjee A.; Roslan M.F.; Mainal A.; Mahmood M.S.
spellingShingle Debnath S.; Said S.M.; Rabilloud F.; Chatterjee A.; Roslan M.F.; Mainal A.; Mahmood M.S.
A DFT study of the chemical and optical properties of 7-atom Ag-X [X = Li, Na] nanoalloys for potential applications in opto-electronics and catalysis
author_facet Debnath S.; Said S.M.; Rabilloud F.; Chatterjee A.; Roslan M.F.; Mainal A.; Mahmood M.S.
author_sort Debnath S.; Said S.M.; Rabilloud F.; Chatterjee A.; Roslan M.F.; Mainal A.; Mahmood M.S.
title A DFT study of the chemical and optical properties of 7-atom Ag-X [X = Li, Na] nanoalloys for potential applications in opto-electronics and catalysis
title_short A DFT study of the chemical and optical properties of 7-atom Ag-X [X = Li, Na] nanoalloys for potential applications in opto-electronics and catalysis
title_full A DFT study of the chemical and optical properties of 7-atom Ag-X [X = Li, Na] nanoalloys for potential applications in opto-electronics and catalysis
title_fullStr A DFT study of the chemical and optical properties of 7-atom Ag-X [X = Li, Na] nanoalloys for potential applications in opto-electronics and catalysis
title_full_unstemmed A DFT study of the chemical and optical properties of 7-atom Ag-X [X = Li, Na] nanoalloys for potential applications in opto-electronics and catalysis
title_sort A DFT study of the chemical and optical properties of 7-atom Ag-X [X = Li, Na] nanoalloys for potential applications in opto-electronics and catalysis
publishDate 2015
container_title RSC Advances
container_volume 5
container_issue 119
doi_str_mv 10.1039/c5ra12428j
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84948425985&doi=10.1039%2fc5ra12428j&partnerID=40&md5=62303f23581059d9e6679d2dc1cd9d65
description In this paper, Ag atoms are substituted by X (Li, Na) atoms to form AgmX(7-m) clusters to explore their electronic, chemical and optical properties in the framework of density functional theory (DFT). The clusters are geometrically optimized without imposing symmetry and later, vibrational analysis is carried out to test the stability of the optimized structures. The calculation of ionization potential and electron affinity asserted that the Li and Na doped bimetallic clusters (especially, Ag4Li3 and Ag3Li4) are very stable in the neutral state, but their anions are expected to be very reactive. The calculated absorption spectra of the AgmX7-m clusters have revealed that the doping of Li and Na has made the absorption band wider with regards to undoped Ag7 clusters. Therefore, this work suggests that Li and Na doping (especially, Ag4X3, Ag3X4 and Ag2X5 clusters) will result in improvement of the absorption band in the 1-5 eV range, which is the prime absorption band for opto-electronic devices such as solar cells. © The Royal Society of Chemistry 2015.
publisher Royal Society of Chemistry
issn 20462069
language English
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