Proceedings Effect of Charge-Modulated Molecular Passivator on Methylammonium/Bromine-Free Inverted Perovskite Solar Cells

Dhruba B. Khadka ; Yasuhiro Shirai SAMURAI ORCID ; Masatoshi Yanagida SAMURAI ORCID ; Kenjiro Miyano

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Citation
Dhruba B. Khadka, Yasuhiro Shirai, Masatoshi Yanagida, Kenjiro Miyano. Effect of Charge-Modulated Molecular Passivator on Methylammonium/Bromine-Free Inverted Perovskite Solar Cells. https://doi.org/10.1109/pvsc57443.2024.10749333
SAMURAI

Description:

(abstract)

This study explores the potential of molecular passivation to enhance both the efficiency and operational stability of perovskite solar cells. We investigate the impact of diammonium iodide functional molecules with aryl or alkyl cores on 3D-perovskite surfaces. We found that piperazine dihydriodide, featuring an alkyl core and an electron-rich -NH terminal was effective in mitigating surface and bulk defects. This molecular passivator not only modifies surface chemistry but also improves carrier extraction efficiency, leading to an impressive 23.17% efficiency with superior long-term stability. Detailed device analysis suggests that robust bonding interactions significantly reduce defect densities in the perovskite film and suppress ion migration. This report provides insights into the synergistic effect of bifunctional molecules in defect mitigation, paving the way for design strategies centered on bonding-regulated molecular passivation to enhance both the performance and stability of solar cells.

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Keyword: MA-free Perovskite, Surface Passivation, Device Stability

Date published: 2024-06-09

Publisher: IEEE

Journal:

  • 2024 IEEE 52nd Photovoltaic Specialist Conference (PVSC) (ISSN: 29951755) p. 2-4

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Manuscript type: Author's version (Submitted manuscript)

MDR DOI: https://doi.org/10.48505/nims.5032

First published URL: https://doi.org/10.1109/pvsc57443.2024.10749333

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Updated at: 2024-12-10 16:54:02 +0900

Published on MDR: 2024-12-10 16:54:03 +0900

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