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August 21, 2025Advanced Functional Materials18 citations

Boosting Efficiency of Hydrothermally Grown Sb2S3 Solar Cells via Rational Sulfur Engineering

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GWGang WangFLFeng LinYHYuqian Huang

Key Points

  • Optimized solar cells achieved a power conversion efficiency of 8.03%, indicating significant improvement over prior methods.
  • Using sodium tetrathionate in hydrothermal growth enhances sulfur supply, improving overall film quality and properties.
  • Research establishes a new technique for forming stable precursor solutions in solar cell fabrication.
  • This work offers a foundation for developing advanced materials in metal sulfide photovoltaics.

Abstract

Abstract A high‐quality absorber layer is crucial for enhancing the performance of emerging photovoltaic devices, such as antimony sulfide (Sb 2 S 3 ) solar cells, especially for the regulation of their composition and defects. However, traditional sulfur sources (supplying only S 2− ) and annealing‐induced sulfur volatilization in hydrothermally grown Sb 2 S 3 solar cells cause sulfur deficiency, severe defects, and low power conversion efficiencies (PCEs). Here, sodium tetrathionate (Na 2 S 4 O 6 ) is introduced as a rationally designed sulfur‐engineering additive, enhancing precursor solution stability via strong coordination and enabling in situ sulfurization in the annealing process. During hydrothermal growth, Na 2 S 4 O 6 slowly releases elemental sulfur, forming Sb 2 S 3x ( x > 1) as‐prepared films that self‐optimize S/Sb stoichiometry during annealing. This strategy elevates the deposition rate, boosts absorber compactness, and reduces defect density. The optimized devices achieve a PCE of 8.03% (certified 7.78%) under AM 1.5G illumination and an indoor PCE of 18.36% (1000 lux LED), representing the highest certified PCE for pure Sb 2 S 3 solar cells to date. By decoupling sulfur supply from traditional sulfide sources, this work establishes Na 2 S 4 O 6 as a versatile additive for hydrothermal synthesis of metal sulfide photovoltaics, offering a blueprint for precursor solution design in hydrothermal‐processed thin‐film devices.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68af56f4ad7bf08b1eadcf59https://doi.org/10.1002/adfm.202518624
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