Impact of CIGS Absorber and Sputtered InxSy:Na Buffer Composition on Solar Cell Performance

Impact of CIGS Absorber and Sputtered InxSy:Na Buffer Composition on Solar Cell Performance

The application of magnetron sputtered In2S3 and InxSy:Na buffer layers on CIGS-based chalcogenide absorbers with different compositions is described. A high copper concentration and RbF doping in CIGS is proven to be more effective than sodium doping in In2S3. CIGS thin-film solar cells with power conversion efficiencies up to 19.1% are demonstrated.

We report on sodium containing indium sulfide (InxSy:Na) buffer layer in combination with a Cu(In,Ga)Se2 (CIGS) absorber and investigate the mutual interaction and influence of them on the thin-film solar cell device performance. We examine a variety of absorber layers including CIGS with RbF post-deposition treatment (PDT), CIGS without PDT, and Ag-alloyed CIGS without PDT, each with three different copper concentrations. All absorber layers are prepared by in-line coevaporation of the elements using a multistage industrially relevant process. The InxSy:Na buffer layers are deposited by magnetron sputtering from three different indium sulfide targets containing 0 mol%, 2 mol%, and 10 mol% NaF.

Devices in which the InxSy:Na layer is combined with CIGS with RbF-PDT have the highest power conversion efficiencies. The presence of sodium in InxSy can contribute to a higher cell efficiency depending on the quality of the absorber used. Sodium likely has a positive effect if the alkali doping in the absorber is insufficient and can be compensated by the sodium supplied from the buffer. We demonstrate cell efficiencies up to 19.1% with a sodium-free In2S3 buffer combined with a high-quality RbF-PDT CIGS absorber with a comparably high copper content.

​Solar RRL, Volume 9, Issue 19, October 2025. Read More

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