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Bandgap-universal passivation enables stable perovskite solar cells with low photovoltage loss

Authors :
Lin, Yen Hung
Vikram
Yang, Fengning
Cao, Xueli
Dasgupta, Akash
Oliver, Robert D.J.
Ulatowski, Aleksander M.
McCarthy, Melissa M.
Shen, Xinyi
Yuan, Qimu
Christoforo, M. Greyson
Yeung, Sze Yan Fion
Johnston, Michael B.
Noel, Nakita K.
Herz, Laura M.
Islam, M. Saiful
Snaith, Henry J.
Lin, Yen Hung
Vikram
Yang, Fengning
Cao, Xueli
Dasgupta, Akash
Oliver, Robert D.J.
Ulatowski, Aleksander M.
McCarthy, Melissa M.
Shen, Xinyi
Yuan, Qimu
Christoforo, M. Greyson
Yeung, Sze Yan Fion
Johnston, Michael B.
Noel, Nakita K.
Herz, Laura M.
Islam, M. Saiful
Snaith, Henry J.
Publication Year :
2024

Abstract

The efficiency and longevity of metal-halide perovskite solar cells are typically dictated by nonradiative defect-mediated charge recombination. In this work, we demonstrate a vapor-based amino-silane passivation that reduces photovoltage deficits to around 100 millivolts (>90% of the thermodynamic limit) in perovskite solar cells of bandgaps between 1.6 and 1.8 electron volts, which is crucial for tandem applications. A primary-, secondary-, or tertiary-amino–silane alone negatively or barely affected perovskite crystallinity and charge transport, but amino-silanes that incorporate primary and secondary amines yield up to a 60-fold increase in photoluminescence quantum yield and preserve long-range conduction. Amino-silane–treated devices retained 95% power conversion efficiency for more than 1500 hours under full-spectrum sunlight at 85°C and open-circuit conditions in ambient air with a relative humidity of 50 to 60%. © 2024 American Association for the Advancement of Science. All rights reserved.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1452722837
Document Type :
Electronic Resource