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Marked Passivation Effect of Naphthalene‐1,8‐Dicarboximides in High‐Performance Perovskite Solar Cells

Authors :
Yanfei Zhao
Zicheng Li
Yitian Du
Yifeng Gao
Peng Gao
Lu Qiao
Zilong Zhang
Qiu Xiong
Longhui Deng
Zhihao Zhang
Klaus Müllen
Chen Li
Qin Zhou
Zhang Lan
Run Long
Source :
Advanced Materials. 33:2008405
Publication Year :
2021
Publisher :
Wiley, 2021.

Abstract

As game-changers in the photovoltaic community, perovskite solar cells are making unprecedented progress while still facing grand challenges such as improving lifetime without impairing efficiency. Herein, two structurally alike polyaromatic molecules based on naphthalene-1,8-dicarboximide (NMI) and perylene-3,4-dicarboximide (PMI) with different molecular dipoles are applied to tackle this issue. Contrasting the electronically pull-pull cyanide-substituted PMI (9CN-PMI) with only Lewis-base groups, the push-pull 4-hydroxybiphenyl-substituted NMI (4OH-NMI) with both protonic and Lewis-base groups can provide better chemical passivation for both shallow- and deep-level defects. Moreover, combined theoretical and experimental studies show that the 4OH-NMI can bind more firmly with perovskite and the polyaromatic backbones create benign midgap states in the excited perovskite to suppress the damage by superoxide anions (energetic passivation). The polar and protonic nature of 4OH-NMI facilitates band alignment and regulates the viscosity of the precursor solution for thicker perovskite films with better morphology. Consequently, the 4OH-NMI-passivated perovskite films exhibit reduced grain boundaries and nearly three-times lower defect density, boosting the device efficiency to 23.7%. A more effective design of the passivator for perovskites with multi-passivation mechanisms is provided in this study.

Details

ISSN :
15214095 and 09359648
Volume :
33
Database :
OpenAIRE
Journal :
Advanced Materials
Accession number :
edsair.doi.dedup.....5b1385533978b0faec79e1c4f6897584
Full Text :
https://doi.org/10.1002/adma.202008405