High-Efficiency CIGSSe Solar Cells Enabled by Solution-Processed ZnO, TiO 2 , and SnO 2 Nanoparticle Window Layers

Abstract

The intrinsic zinc oxide (i-ZnO) thin film serves as a common transparent window layer in high-performance Cu(In,Ga)(S,Se) 2 (CIGSSe) thin film solar cells. However, its conventional deposition via radio-frequency magnetron sputtering increases fabrication costs and limits large-scale industrial production, owing to the complexity of vacuumbased deposition techniques. Developing low-cost, highly transparent, and easily fabricated alternative window layers is therefore crucial for advancing the commercialization of CIGSSe solar cells. Solution-processed metal oxide nanoparticle thin films, such as ZnO, TiO 2 , and SnO 2 , offer excellent optical transmittance and reduced fabrication cost compared to sputtered i-ZnO. In this study, we systematically investigate the effects of metal oxide nanoparticle concentrations and annealing conditions on the photovoltaic performance of CIGSSe devices. Optimal concentrations are identified as 30 mg/mL for ZnO, 15 mg/mL for TiO 2 , and 30 mg/mL for SnO 2 .Under these conditions, all three nanoparticle films exhibit over 90% transmittance, enabling champion power conversion efficiencies of 10.22%, 10.25%, and 11.08%, respectively. Furthermore, the devices incorporating these nanoparticle window layers demonstrate excellent stability. This work provides a viable strategy for developing high-performance and cost-effective CIGSSe thin film solar cells through solutionprocessed metal oxide nanoparticle window layers.

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Article information

Article type
Paper
Submitted
20 Mar 2026
Accepted
10 Jun 2026
First published
11 Jun 2026

New J. Chem., 2026, Accepted Manuscript

High-Efficiency CIGSSe Solar Cells Enabled by Solution-Processed ZnO, TiO 2 , and SnO 2 Nanoparticle Window Layers

C. Li, D. Shen, B. Liu, Z. Deng, Y. Lai, X. Shi and D. Pan, New J. Chem., 2026, Accepted Manuscript , DOI: 10.1039/D6NJ01041E

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