Specifics of ITO properties deposited on cerium-doped glass for space-grade solar cells

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Main Authors: Gren, Danil D., Luchnikov, Lev O., Dorofeev, Dmitri Yu., Alekseev, Prokhor A., Sayarov, Ildar R., Tameev, Alexey R., Dunaevskiy, Mikhail S., Kalinichenko, Vladislav, Ivanov, Vladimir, Saranin, Danila S., Terukov, Eugene I.
Format: Preprint
Published: 2025
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author Gren, Danil D.
Luchnikov, Lev O.
Dorofeev, Dmitri Yu.
Alekseev, Prokhor A.
Sayarov, Ildar R.
Tameev, Alexey R.
Dunaevskiy, Mikhail S.
Kalinichenko, Vladislav
Ivanov, Vladimir
Saranin, Danila S.
Terukov, Eugene I.
author_facet Gren, Danil D.
Luchnikov, Lev O.
Dorofeev, Dmitri Yu.
Alekseev, Prokhor A.
Sayarov, Ildar R.
Tameev, Alexey R.
Dunaevskiy, Mikhail S.
Kalinichenko, Vladislav
Ivanov, Vladimir
Saranin, Danila S.
Terukov, Eugene I.
contents Ce-doped glass is a well-established solution for ultraviolet and ionizing radiation shielding of solar cells in space. Traditionally, Ce-glass protected Si or III-V based devices as an overlaying cap. However, for emerging photovoltaics such as halide perovskites, thin Ce-glass coated with transparent conductive layers could serve as a lightweight carrier with an electrode. While indium-tin oxide (ITO) is widely used in solar cells for charge collection, its optical, structural, and electrical properties depend on the substrate quality. In this work, we demonstrated significant differences in properties of ITO deposited on Ce-glass (100 micron thick) compared to standard soda lime glass. ITO on Ce-glass exhibited pronounced compressive strain because of higher oxygen vacancy concentrations, reduced transparency and charge carrier concentration (10^19 cm-3) resulting from altered stoichiometry. Electrical analysis showed increased Hall mobility (66 cm2V-1s-1) but decreased conductivity due to excess tin incorporation. These specific ITO features originated from inelastic collisions with the substrate during deposition. Variations in wettability and surface potential underscore substrate-induced differences critical for developing optimized ITO coatings for space-grade photovoltaics.
format Preprint
id arxiv_https___arxiv_org_abs_2507_20011
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Specifics of ITO properties deposited on cerium-doped glass for space-grade solar cells
Gren, Danil D.
Luchnikov, Lev O.
Dorofeev, Dmitri Yu.
Alekseev, Prokhor A.
Sayarov, Ildar R.
Tameev, Alexey R.
Dunaevskiy, Mikhail S.
Kalinichenko, Vladislav
Ivanov, Vladimir
Saranin, Danila S.
Terukov, Eugene I.
Materials Science
Mesoscale and Nanoscale Physics
Ce-doped glass is a well-established solution for ultraviolet and ionizing radiation shielding of solar cells in space. Traditionally, Ce-glass protected Si or III-V based devices as an overlaying cap. However, for emerging photovoltaics such as halide perovskites, thin Ce-glass coated with transparent conductive layers could serve as a lightweight carrier with an electrode. While indium-tin oxide (ITO) is widely used in solar cells for charge collection, its optical, structural, and electrical properties depend on the substrate quality. In this work, we demonstrated significant differences in properties of ITO deposited on Ce-glass (100 micron thick) compared to standard soda lime glass. ITO on Ce-glass exhibited pronounced compressive strain because of higher oxygen vacancy concentrations, reduced transparency and charge carrier concentration (10^19 cm-3) resulting from altered stoichiometry. Electrical analysis showed increased Hall mobility (66 cm2V-1s-1) but decreased conductivity due to excess tin incorporation. These specific ITO features originated from inelastic collisions with the substrate during deposition. Variations in wettability and surface potential underscore substrate-induced differences critical for developing optimized ITO coatings for space-grade photovoltaics.
title Specifics of ITO properties deposited on cerium-doped glass for space-grade solar cells
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2507.20011