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The Promise of Operational Stability in Pnictogen-Based Perovskite-Inspired Solar Cells

  • Noora Lamminen
  • , Joshua Karlsson
  • , Ramesh Kumar
  • , Noolu Srinivasa Manikanta Viswanath
  • , Snigdha Lal
  • , Francesca Fasulo
  • , Marcello Righetto
  • , Krishnaiah Mokurala
  • , Kimmo Lahtonen
  • , Amit Tewari
  • , Atanas Katerski
  • , Jussi Lahtinen
  • , Ilona Oja Acik
  • , Erik M. J. Johansson
  • , Ana Belén Muñoz-García
  • , Michele Pavone
  • , Laura M. Herz
  • , Murthy Grandhi
  • , Paola Vivo

Research output: Contribution to journalArticleScientificpeer-review

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Abstract

Perovskite-inspired materials (PIMs) are gaining increasing attention among emerging photovoltaic absorbers due to their inherent air stability and low-toxicity potential. However, operational stability, the Achille’s heel of all emerging photovoltaics, has been largely overlooked in PIMs research so far, making it difficult to forecast their practical use in real-world applications. In this work, we analyse the operational stability of a promising new PIM composition, CsMAFA-Sb:Bi, generated through the antimony:bismuth co-alloying of a triple cation vacancy-ordered antimony-based PIM. Through an in-depth theoretical and experimental investigation, we demonstrate that the co-alloying induces local structural changes that lead to enhanced microstructure, reduced trap-assisted recombination, and increased solar cell power conversion efficiency (PCE), with the highest value being 3.05%. Accelerated aging tests according to ISOS L-1 and L-2 protocols highlight the crucial role of co-alloying in enhancing stability. Specifically, maximum power point tracking at 85 °C shows a projected T80 lifetime of 275 hours for CsMAFA-Sb:Bi devices, which has never been achieved not only for any other PIM-based device but also for high-efficiency technologies, such as lead halide perovskite solar cells with similar device constituents. This work encourages future studies on PIM-based photovoltaics for their potential operational stability, with the goal of reducing the performance gap with established technologies.
Original languageEnglish
Pages (from-to)139-156
JournalEES Solar
Volume1
Issue number2
Early online date18 Mar 2025
DOIs
Publication statusPublished - 2025
Publication typeA1 Journal article-refereed

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

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  • Publication forum level 0

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