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Nanosystems: Physics, Chemistry, Mathematics, 2023, Volume 14, Issue 4, Pages 454–466
DOI: https://doi.org/10.17586/2220-8054-2023-14-4-454-466
(Mi nano1211)
 

This article is cited in 2 scientific papers (total in 2 papers)

CHEMISTRY AND MATERIAL SCIENCE

Solution processed Ag–In–S nanoparticles as light adsorber in ZnO for photovoltaic application

K. Abinayaa, P. Sharvantib, N. Rajeswari Yogamalarc

a London South Bank University, London, UK
b Research and Development, Saint Gobain, San Diego, California, USA
c Hindustan Institute of Technology and Science, Padur, Kelambakkam, Chennai, India
Abstract: Nano-sized indium incorporated silver sulphide (Ag–In–S) nanocomposites were synthesized by simple wet chemical method as an electron transport layer in zinc oxide (ZnO) for high efficient photovoltaic (PV) cell. The inclusion of high conductivity indium ions in Ag$_2$S will improve the facile electron transfer and the assembled hetero-structure features the solar light harvesting in PV cell. The powder X-ray diffraction (XRD) studies confirmed the formation of indium incorporated Ag$_2$S (AIS) nanocomposites and ZnO/AIS (ZAIS) compound nanocomposites crystallizing in pure monoclinic phase and mixed wurtzite hexagonal, monoclinic and tertiary phases respectively. The wide particle size distributions in ZAIS clearly revealed the adherence of AIS nanocomposites in ZnO lattice thus, promoting the light adsorption property. In addition, the tuning of the optical bandgap covering the entire solar spectrum (UV, visible, and infra-red regions), multiple-band electron transitions and hence, promoting the fast electron transportation are effectively achieved in ZAIS compound nanocomposites. With this simple positive approach, the PV cell efficiency is pushed forward with the In$^{3+}$ metal ion incorporation however; enhanced, enriched solar cell efficiency can be later tuned up with the detailed optimization studies.
Keywords: electron transport layer, nanocomposites, hetero-structure, nano-confinement, light adsorption.
Funding agency Grant number
Hindustan Institute of Technology and Science 2023 SEED/CRC/HITS/2022-23/0013
We acknowledge Hindustan Institute of Technology and Science for the financial assistance through HITS Seed Money Grant 2023 SEED/CRC/HITS/2022-23/0013.
Received: 27.09.2022
Revised: 17.03.2023
Accepted: 11.06.2023
Document Type: Article
Language: English
Citation: K. Abinaya, P. Sharvanti, N. Rajeswari Yogamalar, “Solution processed Ag–In–S nanoparticles as light adsorber in ZnO for photovoltaic application”, Nanosystems: Physics, Chemistry, Mathematics, 14:4 (2023), 454–466
Citation in format AMSBIB
\Bibitem{AbiShaRaj23}
\by K.~Abinaya, P.~Sharvanti, N.~Rajeswari Yogamalar
\paper Solution processed Ag--In--S nanoparticles as light adsorber in ZnO for photovoltaic application
\jour Nanosystems: Physics, Chemistry, Mathematics
\yr 2023
\vol 14
\issue 4
\pages 454--466
\mathnet{http://mi.mathnet.ru/nano1211}
\crossref{https://doi.org/10.17586/2220-8054-2023-14-4-454-466}
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  • This publication is cited in the following 2 articles:
    Citing articles in Google Scholar: Russian citations, English citations
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    Nanosystems: Physics, Chemistry, Mathematics
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