Surface chemistry-induced reconstruction of inorganic perovskites for efficient and stable inverted solar cells

IF 38.6 1区 材料科学 Q1 CHEMISTRY, PHYSICAL
Joule Pub Date : 2025-04-16 DOI:10.1016/j.joule.2025.101826
Tianfei Xu , Shengzhong Liu , Sang Il Seok , Wanchun Xiang
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Abstract

Metal halide inorganic perovskites, known for their excellent thermal stability and ideal bandgaps, have shown tremendous potential for high-performance tandem solar cells. However, the performance of inorganic perovskite solar cells with inverted structures remains far from practical usage due to undesirable interfaces. Herein, we report that the introduction of benzyl chloromethyl sulfide can in situ induce surface chemical reactions, forming a new phase on the inorganic perovskite surface and incorporating chloride to coordinate with surface lead. These dual functions fundamentally optimize the interfacial charge transfer, resulting in a considerable increase in device power conversion efficiency (PCE) from 18.50% to 20.82% (certified 20.20%). More importantly, the treated solar cell demonstrates outstanding operational stability by tracking at maximum power point under continuous 1-sun illumination, preserving 90% of its PCE for over 3,000 h. By contrast, the reference devices drop to 48% in 1,500 h.

Abstract Image

Abstract Image

无机钙钛矿的表面化学诱导重建高效稳定的反向太阳能电池
金属卤化物无机钙钛矿以其优异的热稳定性和理想的带隙而闻名,在高性能串联太阳能电池中显示出巨大的潜力。然而,由于不良的界面,具有倒结构的无机钙钛矿太阳能电池的性能仍远未实际应用。本文报道了氯甲基苄硫醚的引入可以原位诱导表面化学反应,在无机钙钛矿表面形成新相,并结合氯与表面铅配合。这些双重功能从根本上优化了界面电荷转移,从而使器件功率转换效率(PCE)从18.50%大幅提高到20.82%(认证为20.20%)。更重要的是,经过处理的太阳能电池表现出出色的运行稳定性,在连续1个太阳照射下,在最大功率点跟踪,在超过3000小时的时间内保持90%的PCE。相比之下,参考器件在1500小时内下降到48%。
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来源期刊
Joule
Joule Energy-General Energy
CiteScore
53.10
自引率
2.00%
发文量
198
期刊介绍: Joule is a sister journal to Cell that focuses on research, analysis, and ideas related to sustainable energy. It aims to address the global challenge of the need for more sustainable energy solutions. Joule is a forward-looking journal that bridges disciplines and scales of energy research. It connects researchers and analysts working on scientific, technical, economic, policy, and social challenges related to sustainable energy. The journal covers a wide range of energy research, from fundamental laboratory studies on energy conversion and storage to global-level analysis. Joule aims to highlight and amplify the implications, challenges, and opportunities of novel energy research for different groups in the field.
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