Polyoxometalate Reinforced Perovskite Phase for High‐Performance Perovskite Photovoltaics

钙钛矿(结构) 材料科学 多金属氧酸盐 光伏 钝化 氧化还原 相(物质) 离子键合 化学工程 纳米技术 光伏系统 离子 图层(电子) 催化作用 化学 有机化学 工程类 生态学 冶金 生物
作者
Xiaofeng Huang,Le‐Yu Bi,Ze‐Fan Yao,Qiang Fu,Baobing Fan,Shengfan Wu,Zhenhuang Su,Qifan Feng,Jiarong Wang,Yuhao Hong,Ming Liu,Yidan An,Mingqian Chen,Alex K.‐Y. Jen
出处
期刊:Advanced Materials [Wiley]
被引量:8
标识
DOI:10.1002/adma.202410564
摘要

Abstract Ionic hybrid perovskites face challenges in maintaining their structural stability against non‐equilibrium phase degradation, therefore, it is essential to develop effective ways to reinforce their corner‐shared [PbI 6 ] 4− octahedral units. To strengthen structural stability, redox‐active functional polyoxometalates (POMs) are developed and incorporated into perovskite solar cells (PSCs) to form a robust polyoxometalates/perovskite interlayer for stabilizing the perovskite phase. This approach offers several advantages: 1) promotes the formation of an interfacial connecting layer to passivate interfacial defects in addition to stabilize the [PbI 6 ] 4− units through exchanged ammonium cations in POMs with perovskites; 2) facilitates continuous structural repairing of Pb 0 ‐ and I 0 ‐rich defects in the [PbI 6 ] 4− unit through redox electron shuttling of the electroactive metal ions in POMs; 3) provides guidance for selecting suitable redox mediators based on the kinetic studies of POM's effectiveness in reacting with targeted defects. The POM‐reinforced device maintains 97.2% of its initial PCE after 1500 h of shelf‐life test at 65 °C, while also enhancing the long‐term operational stability. Additionally, this approach can be generally applicable across scalable sizes and various bandgap perovskites in devices, showing the promise of using functional POMs to enhance perovskite photovoltaic performance.
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