钝化
材料科学
开路电压
钙钛矿(结构)
光伏
带隙
光电子学
钙钛矿太阳能电池
光伏系统
电压
卤化物
透射率
能量转换效率
工程物理
太阳能电池
化学工程
纳米技术
电气工程
无机化学
图层(电子)
化学
工程类
作者
Diego Di Girolamo,Guillaume Vidon,Jessica Barichello,Francesco Di Giacomo,Farshad Jafarzadeh,Barbara Paci,Amanda Generosi,Minjin Kim,Luigi Angelo Castriotta,Mathieu Frégnaux,Jean‐François Guillemoles,Francesca Brunetti,Philip Schulz,Daniel S. Ory,Stéfania Cacovich,Aldo Di Carlo,Fabio Matteocci
标识
DOI:10.1002/aenm.202400663
摘要
Abstract Efficient semi‐transparent solar cells can extend the adoption of photovoltaics beyond standard utility‐scale, commercial, or residential applications. Halide perovskites are particularly suitable in this respect owing to their tunable bandgap. The main drawbacks in the development of transparent perovskite solar cells are the high open‐circuit voltage (V oc ) deficit and the difficulties in depositing high‐quality thin films over large area substrates, given the low solubility of bromide and chloride precursors. In this work, passivation strategies are developed for the high bandgap Br perovskite able to reduce charge recombination and consequently improve the V oc . The study demonstrates 1 cm 2 perovskite solar cells with V oc up to 1.73 V (1.83 eV Quasi Fermi Level Splitting) and a PCE of 8.1%. The average visible transmittance (AVT) exceeds 70% by means of a bifacial light management and a record light utilization efficiency (LUE) of 5.72 is achieved. Moreover, the potential use of the technology is evaluated toward Internet of Things (IoT) application owing to a bifaciality factor of 87% along with 17% PCE under indoor lighting. Finally, the up‐scaling is demonstrated by fabricating 20 cm 2 active area modules with PCE of 7.3% and V oc per cell up to 1.65 V.
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