Dual functionality of charge extraction and interface passivation by self-assembled monolayers in perovskite solar cells

Perovskite solar cells (PSCs) have shown significant advancements in their device performance; however, their poor long-term stability under operational conditions is a major hurdle that hinders their commercialization. Effective bottom interfacial passivation is crucial for enhancing the device per...

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Veröffentlicht in:Energy & environmental science 2024-10, Vol.17 (19), p.6974-716
Hauptverfasser: Azam, Muhammad, Du, Tian, Wan, Zhongquan, Zhao, Heng, Zeng, Huaibiao, Wei, Runmin, Brabec, Christoph J, Luo, Junsheng, Jia, Chunyang
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container_end_page 716
container_issue 19
container_start_page 6974
container_title Energy & environmental science
container_volume 17
creator Azam, Muhammad
Du, Tian
Wan, Zhongquan
Zhao, Heng
Zeng, Huaibiao
Wei, Runmin
Brabec, Christoph J
Luo, Junsheng
Jia, Chunyang
description Perovskite solar cells (PSCs) have shown significant advancements in their device performance; however, their poor long-term stability under operational conditions is a major hurdle that hinders their commercialization. Effective bottom interfacial passivation is crucial for enhancing the device performance. Among the many approaches, self-assembled monolayers (SAMs) are particularly notable due to their exceptional ability for both charge extraction and interfacial defect passivation. In this review, we first demonstrate the issues concealed at the bottom interface and the working mechanisms for the phase separation-based fabrication of p-i-n PSCs. Subsequently, a comprehensive comparison is conducted among various SAMs, which passivate defects in the perovskite bottom interface and charge transport layers (CTLs) and modify the substrate surface properties. Furthermore, recent advancements in understanding how variations in the molecular structure of SAMs influence charge transport and their capability for defect passivation are summarized. Finally, a thought-provoking perspective is presented to stimulate the development of SAM molecules with dual functionality in terms of both carrier extraction and defect passivation. This review overviews the challenges at the buried interface of PSCs, defect passivation capabilities of SAMs, and its effectiveness compared to other passivating agents.
doi_str_mv 10.1039/d4ee02661f
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source Royal Society Of Chemistry Journals 2008-
subjects Charge transport
Commercialization
Current carriers
Defects
Fabrication
Molecular structure
Monolayers
Passivity
Perovskites
Phase separation
Photovoltaic cells
Self-assembled monolayers
Self-assembly
Solar cells
Substrates
Surface properties
title Dual functionality of charge extraction and interface passivation by self-assembled monolayers in perovskite solar cells
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