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April 16, 2026Advanced Energy Materials0 citationsOpen Access

High‐Sublimation‐Temperature Additives for Efficient Perovskite Solar Cells via Single‐Source Evaporation

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ZZZongbao ZhangRJRan JiTSTim Schramm

Key Points

  • This research aims to enhance the performance of perovskite solar cells using specific high-sublimation-temperature additives.
  • Utilized single-source thermal evaporation for depositing perovskite films.
  • Incorporated high-sublimation-temperature additives (CsBr and CaF2) during FAPbI3 powder mechanosynthesis.
  • Evaluated the microstructure and optoelectronic quality of the perovskite films after deposition.
  • Achieved stabilized solar cell efficiencies exceeding 18%.
  • Maintained over 95% of initial power conversion efficiency (PCE) after 150 days in ambient conditions.
  • Enhanced microstructure and environmental stability of the perovskite films compared to control samples.

Abstract

ABSTRACT Vacuum‐deposited perovskite solar cells are promising for commercialization due to their low‐temperature processing, solvent‐free fabrication, and precise control over film thickness and uniformity. Deposition via single‐source thermal evaporation offers high deposition rates and excellent reproducibility; however, devices fabricated via the single‐source evaporation of pre‐synthesized perovskite powders lag far behind those produced by alternative methods, such as co‐evaporation or sequential deposition. In this work, we introduce high‐sublimation‐temperature additives (CsBr and CaF 2 ) to address this limitation. By incorporating these additives during the mechanosynthesis of FAPbI 3 powder, we obtain perovskite films with an improved microstructure and optoelectronic quality. Importantly, while the additives modulate the deposition process, they are not incorporated into the final perovskite film. This mechanism differs significantly from traditional additives, which remain in the film to enhance the perovskite quality. Consequently, thin FAPbI 3 solar cells achieve stabilized efficiencies exceeding 18%, similar to those of devices fabricated via co‐evaporation and sequential evaporation processes. Furthermore, the devices exhibit significantly enhanced environmental stability, maintaining over 95% of the initial PCE after 150 days under ambient conditions (∼20% RH, dim light). These findings underscore the substantial potential of additive engineering for single‐source evaporation, enabling the scalable, high‐throughput industrial production of efficient and stable perovskite photovoltaics.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69e07d732f7e8953b7cbe54chttps://doi.org/10.1002/aenm.70901
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