材料科学
硅
掺杂剂
光电子学
兴奋剂
纳米技术
钝化
带隙
晶体硅
太阳能电池
能量转换效率
吸收(声学)
工程物理
图层(电子)
工程类
复合材料
作者
Kun Gao,Qunyu Bi,Xinyu Wang,Wenzhu Liu,Chunfang Xing,Kun Li,Dacheng Xu,Zhaojun Su,Cheng Zhang,Jian Yu,Dongdong Li,Baoquan Sun,James Bullock,Xiaohong Zhang,Xinbo Yang
标识
DOI:10.1002/adma.202200344
摘要
Advanced doped-silicon-layer-based passivating contacts have boosted the power conversion efficiency (PCE) of single-junction crystalline silicon (c-Si) solar cells to over 26%. However, the inevitable parasitic light absorption of the doped silicon layers impedes further PCE improvement. To this end, alternative passivating contacts based on wide-bandgap metal compounds (so-called dopant-free passivating contacts (DFPCs)) have attracted great attention, thanks to their potential merits in terms of parasitic absorption loss, ease-of-deposition, and cost. Intensive research activity has surrounded this topic with significant progress made in recent years. Various electron-selective and hole-selective contacts based on metal compounds have been successfully developed, and a champion PCE of 23.5% has been achieved for a c-Si solar cell with a MoOx -based hole-selective contact. In this work, the fundamentals and development status of DFPCs are reviewed and the challenges and potential solutions for enhancing the carrier selectivity of DFPCs are discussed. Based on comprehensive and in-depth analysis and simulations, the improvement strategies and future prospects for DFPCs design and device implementation are pointed out. By tuning the carrier concentration of the metal compound and the work function of the capping transparent electrode, high PCEs over 26% can be achieved for c-Si solar cells with DFPCs.
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