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March 8, 2026Nature Communications1 citationsOpen Access

MXene-driven nanoscale field-effect junction for advanced 4-terminal perovskite/silicon tandem solar panels

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AAAntonio AgrestiSPSara PescetelliGVGeorge Viskadouros

Key Points

  • The aim is to enhance the efficiency and stability of perovskite/silicon tandem solar cells for commercial use.
  • Induced formation of a field effect junction in the perovskite active layer.
  • Implemented MXene-based doping and surface gradient passivation.
  • Tested efficiencies of semi-transparent perovskite modules on a 60 cm² area.
  • Integrated the modules into a four-terminal tandem panel measuring 0.2 m².
  • Achieved over 16% efficiency in semi-transparent perovskite modules.
  • The four-terminal panel reached a power conversion efficiency of 19.45%.
  • Power generation density exceeded 23 mW/cm² under 30% ground albedo conditions.
  • Maintained over 95% of initial power after three months, demonstrating real-world stability.

Abstract

The commercialization of perovskite/silicon tandem solar cells hinges on achieving high efficiency and stability while maintaining scalability. This study demonstrates an original approach for inducing the formation of a field effect junction within the perovskite active layer for efficient semi-transparent top modules to be integrated in four-terminal perovskite/silicon tandem panels. A synergy of MXene-based doping and surface gradient passivation enabled semi-transparent perovskite modules with efficiencies surpassing 16% on 60 cm² active area. These were integrated into a four terminal tandem panel (0.2 m2) with a power conversion efficiency of 19.45%, further enhanced by bifacial silicon heterojunction cells to reach a power generation density exceeding 23 mWcm-² under 30% ground albedo conditions. The tandem panel, installed in Crete, retained over 95% of its initial delivered power after three months, showcasing robust real-world stability. This work provides a significant step toward industrial adoption, presenting a scalable, high-efficiency solution for next-generation photovoltaics with minimal modifications to silicon production lines.

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Cite This Study

Agresti et al. (2026) studied this question.

synapsesocial.com/papers/69ada962bc08abd80d5bc94ehttps://doi.org/10.1038/s41467-026-70002-4
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