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用于增强稳定性的耐湿钙钛矿太阳能电池。

Moisture-Resilient Perovskite Solar Cells for Enhanced Stability.

作者信息

Azmi Randi, Zhumagali Shynggys, Bristow Helen, Zhang Shanshan, Yazmaciyan Aren, Pininti Anil Reddy, Utomo Drajad Satrio, Subbiah Anand S, De Wolf Stefaan

机构信息

Physical Science and Engineering Division (PSE), KAUST Solar Center (KSC), King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Kingdom of Saudi Arabia.

出版信息

Adv Mater. 2024 Mar;36(12):e2211317. doi: 10.1002/adma.202211317. Epub 2023 Oct 31.

Abstract

With the rapid rise in device performance of perovskite solar cells (PSCs), overcoming instabilities under outdoor operating conditions has become the most crucial obstacle toward their commercialization. Among stressors such as light, heat, voltage bias, and moisture, the latter is arguably the most critical, as it can decompose metal-halide perovskite (MHP) photoactive absorbers instantly through its hygroscopic components (organic cations and metal halides). In addition, most charge transport layers (CTLs) commonly employed in PSCs also degrade in the presence of water. Furthermore, photovoltaic module fabrication encompasses several steps, such as laser processing, subcell interconnection, and encapsulation, during which the device layers are exposed to the ambient atmosphere. Therefore, as a first step toward long-term stable perovskite photovoltaics, it is vital to engineer device materials toward maximizing moisture resilience, which can be accomplished by passivating the bulk of the MHP film, introducing passivation interlayers at the top contact, exploiting hydrophobic CTLs, and encapsulating finished devices with hydrophobic barrier layers, without jeopardizing device performance. Here, existing strategies for enhancing the performance stability of PSCs are reviewed and pathways toward moisture-resilient commercial perovskite devices are formulated.

摘要

随着钙钛矿太阳能电池(PSC)器件性能的迅速提升,克服户外工作条件下的不稳定性已成为其商业化进程中最关键的障碍。在光照、热量、电压偏置和湿度等压力因素中,湿度 arguably 是最关键的,因为它可以通过其吸湿成分(有机阳离子和金属卤化物)立即分解金属卤化物钙钛矿(MHP)光活性吸收剂。此外,PSC 中常用的大多数电荷传输层(CTL)在有水的情况下也会降解。此外,光伏组件制造包括几个步骤,如激光加工、子电池互连和封装,在此期间器件层会暴露在环境大气中。因此,作为实现长期稳定钙钛矿光伏的第一步,至关重要的是设计器件材料以最大化耐湿性,这可以通过钝化 MHP 薄膜主体、在顶部接触处引入钝化中间层、利用疏水性 CTL 以及用疏水阻挡层封装成品器件来实现,同时不损害器件性能。在此,综述了提高 PSC 性能稳定性的现有策略,并制定了实现耐湿商业钙钛矿器件的途径。

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