Synergistic effect of thermal and light-soaking treatments on CZTSSe/ALD-ZTO solar cells

Kesterite Cu 2 ZnSn(S,Se) 4 (CZTSSe) is an attractive thin-film absorber based on earth-abundant and low-toxicity elements. Nevertheless, high-performance CZTSSe solar cells still typically employ CdS buffer layers, which pose significant limitations due to the hazardous nature of Cd and introduce parasitic absorption at short wavelengths. The use of alternative buffer layers is therefore crucial for further advancing this technology. Among the possible candidates, Zn x Sn 1−x O (ZTO) has emerged as a promising option due to its wide, tunable bandgap and benign constituents. In this work, ZTO buffer layers were deposited by Atomic Layer Deposition (ALD) at three different temperatures (150, 120, 90 °C). However, the as-deposited ZTO films exhibited high resistivity, which was mainly attributed to the controversial role of defect-related intragap states. To overcome this limitation, complete photovoltaic (PV) devices were annealed in air at 260 °C and subsequently exposed to light soaking. These post-deposition treatments synergistically improved the electrical conductivity of ZTO and reduced trap-assisted recombination, thereby enhancing final PV performance. Optical characterisation revealed a widened bandgap compared to conventional CdS, effectively suppressing parasitic absorption in the blue spectral region and enhancing short-circuit current density (J SC ) as expected. The best-performing devices were obtained with ZTO deposited at 90 °C, yielding efficiencies ( η ) exceeding 7% by optimising the trade-off between junction quality and ZTO conductivity. These experimental findings are corroborated by numerical SCAPS simulations and confirm the potential of ALD-grown ZTO as a Cd-free buffer layer for kesterite solar cells.

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Journal
Materials Science in Semiconductor Processing
Published
2026-08-25
DOI
https://doi.org/10.1016/j.mssp.2026.111113
Primary Topic
Chalcogenide Semiconductor Thin Films
Type
article
Field-Weighted Citation Impact
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article

Synergistic effect of thermal and light-soaking treatments on CZTSSe/ALD-ZTO solar cells

Berenice Elena Gaia Colombo, Giorgio Tseberlidis, Valerio Di Palma, Fabio Butrichi et al.
Materials Science in Semiconductor Processing
Chalcogenide Semiconductor Thin Films
article

Synergistic effect of thermal and light-soaking treatments on CZTSSe/ALD-ZTO solar cells

Berenice Elena Gaia Colombo, Giorgio Tseberlidis, Valerio Di Palma, Fabio Butrichi, Vanira Trifiletti, C. Gobbo, Maurizio Acciarri, Simona Binetti
article en

Abstract

Kesterite Cu 2 ZnSn(S,Se) 4 (CZTSSe) is an attractive thin-film absorber based on earth-abundant and low-toxicity elements. Nevertheless, high-performance CZTSSe solar cells still typically employ CdS buffer layers, which pose significant limitations due to the hazardous nature of Cd and introduce parasitic absorption at short wavelengths. The use of alternative buffer layers is therefore crucial for further advancing this technology. Among the possible candidates, Zn x Sn 1−x O (ZTO) has emerged as a promising option due to its wide, tunable bandgap and benign constituents. In this work, ZTO buffer layers were deposited by Atomic Layer Deposition (ALD) at three different temperatures (150, 120, 90 °C). However, the as-deposited ZTO films exhibited high resistivity, which was mainly attributed to the controversial role of defect-related intragap states. To overcome this limitation, complete photovoltaic (PV) devices were annealed in air at 260 °C and subsequently exposed to light soaking. These post-deposition treatments synergistically improved the electrical conductivity of ZTO and reduced trap-assisted recombination, thereby enhancing final PV performance. Optical characterisation revealed a widened bandgap compared to conventional CdS, effectively suppressing parasitic absorption in the blue spectral region and enhancing short-circuit current density (J SC ) as expected. The best-performing devices were obtained with ZTO deposited at 90 °C, yielding efficiencies ( η ) exceeding 7% by optimising the trade-off between junction quality and ZTO conductivity. These experimental findings are corroborated by numerical SCAPS simulations and confirm the potential of ALD-grown ZTO as a Cd-free buffer layer for kesterite solar cells.

Materials Science in Semiconductor ProcessingVol. 217
Institute of Science and Technology for Ceramics (IT), University of Milano-Bicocca (IT)
European Cooperation in Science and Technology, Università degli Studi di Milano-Bicocca, Ministry of Environment
Openalex Percentile: Top 19%
Chalcogenide Semiconductor Thin Films
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