串联
光伏
钙钛矿(结构)
硅
光电子学
材料科学
电极
工程物理
光伏系统
纳米技术
电气工程
工程类
化学
复合材料
化学工程
物理化学
作者
Hung‐Chieh Hsu,Yu‐Pin Lin,Cheng‐Hsien Yeh,Shih‐Hsiung Wu,Chuan‐Feng Shih
出处
期刊:Solar RRL
[Wiley]
日期:2025-08-25
卷期号:9 (18)
标识
DOI:10.1002/solr.202500372
摘要
Four‐terminal (4T) perovskite/silicon tandem solar cells offer a promising route to surpass the thermodynamic Shockley–Queisser limit of silicon‐based solar cells, enabling higher power conversion efficiencies (PCEs). However, due to current‐spreading and shading issues, the efficiency of such devices tends to decrease significantly with increasing device area. In this architecture, the semitransparent perovskite top cell and electrode design play critical roles. In this study, we optimized the balance between optical transmittance and electrical conductivity by precisely controlling the oxygen content during the deposition of the transparent conductive oxide layer. This optimization significantly improved the photovoltaic performance of the perovskite module, achieving a champion PCE of 13.8% over a 4 cm 2 active area. Furthermore, we introduced an innovative metallization strategy, designated as “P2.5,” which involved localized gold deposition between sequential laser‐scribing steps. This approach drastically reduced the contact resistance from 37.7 to 0.35 Ω, enhancing the module efficiency to 15.9%. To address the issue of optical shading induced by increased Au coverage, we implemented a patterned P2.5 configuration. This design preserved the top cell PCE at 15.5% while maintaining the filtered percentage of the bottom silicon cell at 43.4%. As a result, the 4T tandem module achieved an overall PCE of 26.1% over a 4 cm 2 active area, demonstrating one of the highest efficiencies among reported large‐area 4T tandem devices with competitive scalability and light management.
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