材料科学
串联
钙钛矿(结构)
离子
化学工程
工程物理
纳米技术
光电子学
复合材料
量子力学
物理
工程类
作者
Sahil Shah,Fengjiu Yang,Eike Köhnen,Esma Ugur,Mark Khenkin,Jarla Thiesbrummel,Bor Li,Lucas Holte,Sebastian Berwig,Florian Scherler,Paria Forozi,Jonas Diekmann,Francisco Peña‐Camargo,Marko Remec,Nikhil Kalasariya,Erkan Aydın,Felix Lang,Henry J. Snaith,Dieter Neher,Stefaan De Wolf,Carolin Ulbrich,Steve Albrecht,Martin Stolterfoht
标识
DOI:10.1002/aenm.202400720
摘要
Abstract The stability of perovskite‐based tandem solar cells (TSCs) is the last major scientific/technical challenge to be overcome before commercialization. Understanding the impact of mobile ions on the TSC performance is key to minimizing degradation. Here, a comprehensive study that combines an experimental analysis of ionic losses in Si/perovskite and all‐perovskite TSCs using scan‐rate‐dependent current–voltage ( J–V ) measurements with drift‐diffusion simulations is presented. The findings demonstrate that mobile ions have a significant influence on the tandem cell performance lowering the ion‐freeze power conversion efficiency from >31% for Si/perovskite and >30% for all‐perovskite tandems to ≈28% in steady‐state. Moreover, the ions cause a substantial hysteresis in Si/perovskite TSCs at high scan speeds (400 s −1 ), and significantly influence the performance degradation of both devices through internal field screening. Additionally, for all‐perovskite tandems, subcell‐dominated J–V characterization reveals more pronounced ionic losses in the wide‐bandgap subcell during aging, which is attributed to its tendency for halide segregation. This work provides valuable insights into ionic losses in perovskite‐based TSCs which helps to separate ion migration‐related degradation modes from other degradation mechanisms and guides targeted interventions for enhanced subcell efficiency and stability.
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