钙钛矿(结构)
氧化物
材料科学
纳米技术
分层(地质)
金属
工程物理
异质结
化学物理
光电子学
化学工程
化学
物理
冶金
古生物学
工程类
生物
构造学
俯冲
作者
Furkan H. Isikgor,Shynggys Zhumagali,Luis Victor Torres Merino,Michele De Bastiani,Iain McCulloch,Stefaan De Wolf
标识
DOI:10.1038/s41578-022-00503-3
摘要
Metal-oxide-based charge-transport layers have played a pivotal role in the progress of perovskite solar cells. Yet metal-oxide/perovskite interfaces are often highly defective, owing to both metal-oxide and perovskite surface defects. This results in non-radiative recombination and impedes charge transfer. Moreover, during operation, such interfaces may suffer from undesirable chemical reactions and mechanical delamination issues. Solving this multifaceted challenge requires a holistic approach to concurrently address the interfacial defect, charge-transfer, chemical stability and delamination issues, to bring perovskite solar cell technology closer to commercialization. With this motivation, we review and discuss the issues associated with the metal-oxide/perovskite interface in detail. With this knowledge at hand, we then suggest solutions based on molecular engineering for many, if not all, challenges that encumber the metal-oxide/perovskite interface. Specifically, in light of the semiconducting and ultrafast charge-transfer properties of dyes and the recent success of self-assembled monolayers as charge-selective contacts, we discuss how such molecules can potentially be a promising solution for all metal-oxide/perovskite interface issues.
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