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March 16, 2026Nature Communications3 citationsOpen Access

Vacuum-induced interfacial compaction for scalable fabrication of high-performance organic solar cells

SWS.T. WangRDRui DingZZZiyang Zhang

Key Points

  • The research aims to enhance the efficiency and stability of organic solar cells through a novel compaction method.
  • Introduced a vacuum-induced interfacial compaction strategy.
  • Formed smooth, compact, and strongly adhered multilayer films.
  • Avoided conventional thermal or solvent annealing.
  • Achieved power conversion efficiencies of 20.51% for rigid and 19.13% for flexible devices.
  • Demonstrated efficiencies of 19.04% for a 1.0 cm2 device and 17.48% for a 15.7 cm2 module.
  • Maintained high efficiency of 15.37% upon scaling to 67.2 cm2.

Abstract

Organic solar cells hold great promise for next-generation photovoltaics, yet their practical deployment is impeded by intrinsic morphological and interfacial limitations that compromise device performance and stability. Herein, we introduce a vacuum-induced interfacial compaction strategy that forms smooth, compact, and strongly adhered multilayer films without conventional thermal or solvent annealing, by promoting dense stacking, suppressing interfacial voids, and improving overall interfacial integrity. Consequently, corresponding devices achieve power conversion efficiencies of 20.51% for rigid and 19.13% for flexible devices, together with a high yield. Notably, device with an active area of 1.0 cm2 and a module with an area of 15.7 cm2 fabricated with this strategy deliver efficiencies of 19.04% and 17.48%, respectively. Upon further scaling the module area to 67.2 cm2, a high efficiency of 15.37% is still attained. These results establish the vacuum-induced interfacial compaction strategy as a feasible route toward durable, high-performance organic solar cells. Organic solar cells face morphological and interfacial limits that reduce efficiency and stability. The authors present a vacuum-induced compaction method that builds dense, smooth interfaces, delivering large area-scalable high-performance devices.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69b79e538166e15b153ab7c5https://doi.org/10.1038/s41467-026-70579-w
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