Organic‐Hydrochloride‐Modified ZnO Electron Transport Layer for Efficient Defect Passivation and Stress Release in Rigid and Flexible all Inorganic Perovskite Solar Cells

钝化 钙钛矿(结构) 材料科学 图层(电子) 压力(语言学) 化学工程 光伏系统 复合材料 光电子学 纳米技术 电气工程 语言学 哲学 工程类
作者
Wenjie Xu,Xiaoxuan Tang,Jie Xiong,Weiwei Xu,Heng Zhou,Chaohan Yu,Yanhui Lou,Lai Feng
出处
期刊:Small [Wiley]
卷期号:20 (32) 被引量:4
标识
DOI:10.1002/smll.202312230
摘要

Abstract All inorganic CsPbI 2 Br perovskite (AIP) has attracted great attention due to its excellent resistance against thermal stress as well as the remarkable capability to deliver high‐voltage output. However, CsPbI 2 Br perovskite solar cells (PeSCs) still encounter critical challenges in attaining both high efficiency and mechanical stability for commercial applications. In this work, formamidine disulfide dihydrochloride (FADD) modified ZnO electron transport layer (ETL) has been developed for fabricating inverted devices on either rigid or flexible substrate. It is found that the FADD modification leads to efficient defects passivation, thereby significantly reducing charge recombination at the AIP/ETL interface. As a result, rigid PeSCs (r‐PeSCs) deliver an enhanced efficiency of 16.05% and improved long‐term thermal stability. Moreover, the introduced FADD can regulate the Young's modulus (or Derjaguin‐Muller‐Toporov (DMT) modilus) of ZnO ETL and dissipate stress concentration at the AIP/ETL interface, effectively restraining the crack generation and improving the mechanical stability of PeSCs. The flexible PeSCs (f‐PeSCs) exhibit one of the best performances so far reported with excellent stability against 6000 bending cycles at a curvature radius of 5 mm. This work thus provides an effective strategy to simultaneously improve the photovoltaic performance and mechanical stability.
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