钙钛矿(结构)
非阻塞I/O
材料科学
单层
带隙
光电子学
接口(物质)
纳米技术
结晶学
化学
复合材料
催化作用
生物化学
毛细管数
毛细管作用
作者
Xiaoting Wang,Zhangbo Lu,Liujiang Zhang,Xin Yang,Yuanzhong Liu,Xiaofei Ji,Dan Chi,Shihua Huang,Jin Huang,Liyou Yang,Xuegong Yu,Linfeng Lu
标识
DOI:10.1021/acsanm.5c01102
摘要
Wide bandgap (WBG) NiOX-based perovskite solar cells demonstrate significant potential for achieving efficient and stable perovskite/silicon tandem solar cells. Nevertheless, the enhancement of device efficiency continues to be constrained by severe interface defects, inadequate hole extraction, and a substantial energy level mismatch between the NiOX hole transport layer (HTLs) and the perovskite layer. Here, we propose an interface engineering strategy involving the mixture of [4-(3,6-dimethyl-9H-carbazol-9-yl)butyl]phosphonic acid and [2-(3,6-dimethoxy-9H-carbazol-9-yl)ethyl]phosphonic acid as Co-SAM modified NiOX HTLs. This approach effectively suppresses nonradiative recombination at the HTL/perovskite interface, and the finely optimized energy-level arrangement significantly facilitates hole extraction at the interface. As a result, the 1.68 eV inverted WBG perovskite solar cell with Co-SAM-modified NiOX exhibited an impressive efficiency of 21.6%, with an open-circuit voltage of 1.19 V and a fill factor of 81.2%, as well as excellent long-term stability under one solar illumination. This study provides valuable insights for addressing the challenge of the NiOX/perovskite buried interface and realizing high-performance and durable perovskite cells.
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