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Real Time Spectroscopic Ellipsometry Analysis of First Stage CuIn(1−x)Ga(x)Se(2) Growth: Indium-Gallium Selenide Co-Evaporation

Real time spectroscopic ellipsometry (RTSE) has been applied for in-situ monitoring of the first stage of copper indium-gallium diselenide (CIGS) thin film deposition by the three-stage co-evaporation process used for fabrication of high efficiency thin film photovoltaic (PV) devices. The first stag...

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Autores principales: Pradhan, Puja, Aryal, Puruswottam, Attygalle, Dinesh, Ibdah, Abdel-Rahman, Koirala, Prakash, Li, Jian, Bhandari, Khagendra P., Liyanage, Geethika K., Ellingson, Randy J., Heben, Michael J., Marsillac, Sylvain, Collins, Robert W., Podraza, Nikolas J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5793643/
https://www.ncbi.nlm.nih.gov/pubmed/29337931
http://dx.doi.org/10.3390/ma11010145
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author Pradhan, Puja
Aryal, Puruswottam
Attygalle, Dinesh
Ibdah, Abdel-Rahman
Koirala, Prakash
Li, Jian
Bhandari, Khagendra P.
Liyanage, Geethika K.
Ellingson, Randy J.
Heben, Michael J.
Marsillac, Sylvain
Collins, Robert W.
Podraza, Nikolas J.
author_facet Pradhan, Puja
Aryal, Puruswottam
Attygalle, Dinesh
Ibdah, Abdel-Rahman
Koirala, Prakash
Li, Jian
Bhandari, Khagendra P.
Liyanage, Geethika K.
Ellingson, Randy J.
Heben, Michael J.
Marsillac, Sylvain
Collins, Robert W.
Podraza, Nikolas J.
author_sort Pradhan, Puja
collection PubMed
description Real time spectroscopic ellipsometry (RTSE) has been applied for in-situ monitoring of the first stage of copper indium-gallium diselenide (CIGS) thin film deposition by the three-stage co-evaporation process used for fabrication of high efficiency thin film photovoltaic (PV) devices. The first stage entails the growth of indium-gallium selenide (In(1−x)Ga(x))(2)Se(3) (IGS) on a substrate of Mo-coated soda lime glass maintained at a temperature of 400 °C. This is a critical stage of CIGS deposition because a large fraction of the final film thickness is deposited, and as a result precise compositional control is desired in order to achieve the optimum performance of the resulting CIGS solar cell. RTSE is sensitive to monolayer level film growth processes and can provide accurate measurements of bulk and surface roughness layer thicknesses. These in turn enable accurate measurements of the bulk layer optical response in the form of the complex dielectric function ε = ε(1) − iε(2), spectra. Here, RTSE has been used to obtain the (ε(1), ε(2)) spectra at the measurement temperature of 400 °C for IGS thin films of different Ga contents (x) deduced from different ranges of accumulated bulk layer thickness during the deposition process. Applying an analytical expression in common for each of the (ε(1), ε(2)) spectra of these IGS films, oscillator parameters have been obtained in the best fits and these parameters in turn have been fitted with polynomials in x. From the resulting database of polynomial coefficients, the (ε(1), ε(2)) spectra can be generated for any composition of IGS from the single parameter, x. The results have served as an RTSE fingerprint for IGS composition and have provided further structural information beyond simply thicknesses, for example information related to film density and grain size. The deduced IGS structural evolution and the (ε(1), ε(2)) spectra have been interpreted as well in relation to observations from scanning electron microscopy, X-ray diffractometry and energy-dispersive X-ray spectroscopy profiling analyses. Overall the structural, optical and compositional analysis possible by RTSE has assisted in understanding the growth and properties of three stage CIGS absorbers for solar cells and shows future promise for enhancing cell performance through monitoring and control.
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spelling pubmed-57936432018-02-07 Real Time Spectroscopic Ellipsometry Analysis of First Stage CuIn(1−x)Ga(x)Se(2) Growth: Indium-Gallium Selenide Co-Evaporation Pradhan, Puja Aryal, Puruswottam Attygalle, Dinesh Ibdah, Abdel-Rahman Koirala, Prakash Li, Jian Bhandari, Khagendra P. Liyanage, Geethika K. Ellingson, Randy J. Heben, Michael J. Marsillac, Sylvain Collins, Robert W. Podraza, Nikolas J. Materials (Basel) Article Real time spectroscopic ellipsometry (RTSE) has been applied for in-situ monitoring of the first stage of copper indium-gallium diselenide (CIGS) thin film deposition by the three-stage co-evaporation process used for fabrication of high efficiency thin film photovoltaic (PV) devices. The first stage entails the growth of indium-gallium selenide (In(1−x)Ga(x))(2)Se(3) (IGS) on a substrate of Mo-coated soda lime glass maintained at a temperature of 400 °C. This is a critical stage of CIGS deposition because a large fraction of the final film thickness is deposited, and as a result precise compositional control is desired in order to achieve the optimum performance of the resulting CIGS solar cell. RTSE is sensitive to monolayer level film growth processes and can provide accurate measurements of bulk and surface roughness layer thicknesses. These in turn enable accurate measurements of the bulk layer optical response in the form of the complex dielectric function ε = ε(1) − iε(2), spectra. Here, RTSE has been used to obtain the (ε(1), ε(2)) spectra at the measurement temperature of 400 °C for IGS thin films of different Ga contents (x) deduced from different ranges of accumulated bulk layer thickness during the deposition process. Applying an analytical expression in common for each of the (ε(1), ε(2)) spectra of these IGS films, oscillator parameters have been obtained in the best fits and these parameters in turn have been fitted with polynomials in x. From the resulting database of polynomial coefficients, the (ε(1), ε(2)) spectra can be generated for any composition of IGS from the single parameter, x. The results have served as an RTSE fingerprint for IGS composition and have provided further structural information beyond simply thicknesses, for example information related to film density and grain size. The deduced IGS structural evolution and the (ε(1), ε(2)) spectra have been interpreted as well in relation to observations from scanning electron microscopy, X-ray diffractometry and energy-dispersive X-ray spectroscopy profiling analyses. Overall the structural, optical and compositional analysis possible by RTSE has assisted in understanding the growth and properties of three stage CIGS absorbers for solar cells and shows future promise for enhancing cell performance through monitoring and control. MDPI 2018-01-16 /pmc/articles/PMC5793643/ /pubmed/29337931 http://dx.doi.org/10.3390/ma11010145 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Pradhan, Puja
Aryal, Puruswottam
Attygalle, Dinesh
Ibdah, Abdel-Rahman
Koirala, Prakash
Li, Jian
Bhandari, Khagendra P.
Liyanage, Geethika K.
Ellingson, Randy J.
Heben, Michael J.
Marsillac, Sylvain
Collins, Robert W.
Podraza, Nikolas J.
Real Time Spectroscopic Ellipsometry Analysis of First Stage CuIn(1−x)Ga(x)Se(2) Growth: Indium-Gallium Selenide Co-Evaporation
title Real Time Spectroscopic Ellipsometry Analysis of First Stage CuIn(1−x)Ga(x)Se(2) Growth: Indium-Gallium Selenide Co-Evaporation
title_full Real Time Spectroscopic Ellipsometry Analysis of First Stage CuIn(1−x)Ga(x)Se(2) Growth: Indium-Gallium Selenide Co-Evaporation
title_fullStr Real Time Spectroscopic Ellipsometry Analysis of First Stage CuIn(1−x)Ga(x)Se(2) Growth: Indium-Gallium Selenide Co-Evaporation
title_full_unstemmed Real Time Spectroscopic Ellipsometry Analysis of First Stage CuIn(1−x)Ga(x)Se(2) Growth: Indium-Gallium Selenide Co-Evaporation
title_short Real Time Spectroscopic Ellipsometry Analysis of First Stage CuIn(1−x)Ga(x)Se(2) Growth: Indium-Gallium Selenide Co-Evaporation
title_sort real time spectroscopic ellipsometry analysis of first stage cuin(1−x)ga(x)se(2) growth: indium-gallium selenide co-evaporation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5793643/
https://www.ncbi.nlm.nih.gov/pubmed/29337931
http://dx.doi.org/10.3390/ma11010145
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