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分级异质结工程实现高效空穴提取和导电性的无空穴传输层钙钛矿太阳能电池

Graded Heterojunction Engineering for Hole-Conductor-Free Perovskite Solar Cells with High Hole Extraction Efficiency and Conductivity.

机构信息

Key Laboratory for Liquid-Solid Structural Evolution and Processing of Materials, Ministry of Education, School of Materials Science and Engineering, Shandong University, Jinan, 250061, P. R. China.

出版信息

Adv Mater. 2017 Oct;29(39). doi: 10.1002/adma.201701221. Epub 2017 Aug 28.

Abstract

Despite great progress in the photovoltaic conversion efficiency (PCE) of inorganic-organic hybrid perovskite solar cells (PSCs), the large-scale application of PSCs still faces serious challenges due to the poor-stability and high-cost of the spiro-OMeTAD hole transport layer (HTL). It is of great fundamental importance to rationally address the issues of hole extraction and transfer arising from HTL-free PSCs. Herein, a brand-new PSC architecture is designed by introducing multigraded-heterojunction (GHJ) inorganic perovskite CsPbBr I layers as an efficient HTL. The grade adjustment can be achieved by precisely tuning the halide proportion and distribution in the CsPbBr I film to reach an optimal energy alignment of the valance and conduction band between MAPbI and CsPbBr I . The CsPbBr I GHJ as an efficient HTL can induce an electric field where a valance/conduction band edge is leveraged to bend at the heterojunction interface, boosting the interfacial electron-hole splitting and photoelectron extraction. The GHJ architecture enhances the hole extraction and conduction efficiency from the MAPbI to the counter electrode, decreases the recombination loss during the hole transfer, and benefits in increasing the open-circuit voltage. The optimized HTL-free PCS based on the GHJ architecture demonstrates an outstanding thermal stability and a significantly improved PCE of 11.33%, nearly 40% increase compared with 8.16% for pure HTL-free devices.

摘要

尽管无机-有机杂化钙钛矿太阳能电池(PSCs)的光电转换效率(PCE)取得了巨大进展,但由于 spiro-OMeTAD 空穴传输层(HTL)的稳定性差和成本高,其大规模应用仍面临严峻挑战。合理解决 HTL 自由 PSCs 中出现的空穴提取和转移问题具有重要的基础意义。在此,通过引入多级异质结(GHJ)无机钙钛矿 CsPbBr I 层作为高效 HTL,设计了一种全新的 PSC 结构。通过精确调整 CsPbBr I 薄膜中的卤素比例和分布,可以实现级调整,从而达到 MAPbI 和 CsPbBr I 之间价带和导带的最佳能量对准。CsPbBr I GHJ 作为高效 HTL,可以诱导电场,利用异质结界面处的价带/导带边缘弯曲,从而增强界面电子-空穴的分裂和光电子提取。GHJ 结构提高了 MAPbI 到对电极的空穴提取和传导效率,减少了空穴转移过程中的复合损失,有利于提高开路电压。基于 GHJ 结构的优化 HTL 自由 PCS 表现出出色的热稳定性和显著提高的 PCE(11.33%),与纯 HTL 自由器件的 8.16%相比,提高了近 40%。

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