Fundamental Flaw in the Current Construction of the TiO2 Electron Transport Layer of Perovskite Solar Cells and Its Elimination
Fundamental Flaw in the Current Construction of the TiO2 Electron Transport Layer of Perovskite Solar Cells and Its Elimination
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钙钛矿太阳能电池TiO2电子传输层现有结构的根本缺陷及其消除
DOI:
10.1021/acsami.1c09742
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发表时间:
2021
影响因子:
9.5
通讯作者:
Zhao Jincai
中科院分区:
文献类型:
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作者:
Yan Yan;Liu Cheng;Yang Yi;Hu Guoxiang;Tiwari V;ana;Jiang De-en;Peng Wei;Jha Ajay;Duan Hong-Guang;Tellkamp Friedjof;Ding Yong;Shi Weidong;Yuan Shouqi;Miller Dwayne;Ma Wanhong;Zhao Jincai
The top-performing perovskite solar cells (efficiency > 20%) generally rely on the use of a nanocrystal TiO2electron transport layer (ETL). However, the efficacies and stability of the current stereotypically prepared TiO2ETLs employing commercially available TiO2nanocrystal paste are far from their maximum values. As revealed herein, the long-hidden reason for this discrepancy is that acidic protons (∼0.11 wt %) always remain in TiO2ETLs after high-temperature sintering due to the decomposition of the organic proton solvent (mostly alcohol). These protons readily lead to the formation of Ti–H species upon light irradiation, which act to block the electron transfer at the perovskite/TiO2interface. Affront this challenge, we introduced a simple deprotonation protocol by adding a small amount of strong proton acceptors (sodium ethoxide or NaOH) into the common TiO2nanocrystal paste precursor and replicated the high-temperature sintering process, which wiped out nearly all protons in TiO2ETLs during the sintering process. The use of deprotonated TiO2ETLs not only promotes the PCE of both MAPbI3-based and FA0.85MA0.15PbI2.55Br0.45-based devices over 20% but also significantly improves the long-term photostability of the target devices upon 1000 h of continuous operation.