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用于钙钛矿太阳能电池的具有高空穴迁移率和优异界面性能的空穴传输材料的设计

Designing Hole Transport Materials with High Hole Mobility and Outstanding Interface Properties for Perovskite Solar Cells.

作者信息

Jiang Rui, Zhu Rui, Li Ze-Sheng

机构信息

School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing, 100081, China.

出版信息

Chemphyschem. 2020 Aug 18;21(16):1866-1872. doi: 10.1002/cphc.202000209. Epub 2020 Jul 17.

DOI:10.1002/cphc.202000209
PMID:32609405
Abstract

Organic-inorganic halide perovskite solar cells (PSCs) have attracted much attention due to their rapid increase in power conversion efficiencies (PCEs), and many efforts are devoted to further improving the PCEs. Designing highly efficient hole transport materials (HTMs) for PSCs may be one of the effective ways. Herein we theoretically designed three new HTMs (FDT-N, FDT-O, and FDT-S) by introducing a nitrogen-phenyl group, an oxygen atom, and a sulfur atom into the spiro core of an experimentally synthesized HTM (FDT), respectively. And then we performed quantum chemical calculation to study their application potential. The results show that the devices with FDT-O and FDT-S instead of FDT may have higher open circuit voltages owing to their lower highest occupied molecular orbital (HOMO) energy levels. Moreover, FDT-S exhibits the best hole transport performance among the studied HTMs, which may be due to the significant HOMO-HOMO overlap in the hole hopping path with the largest transfer integral. Furthermore, the results on interface properties indicate that introducing oxygen and sulfur atoms can enhance the MAPbI /HTM interface interaction. The present work not only offers two promising HTMs (FDT-O and FDT-S) for PSCs but also provides theoretical help for subsequent research on HTMs.

摘要

有机-无机卤化物钙钛矿太阳能电池(PSC)因其功率转换效率(PCE)的迅速提高而备受关注,人们致力于进一步提高其PCE。为PSC设计高效的空穴传输材料(HTM)可能是有效途径之一。在此,我们通过分别将氮苯基、氧原子和硫原子引入到一种实验合成的HTM(FDT)的螺环核心中,理论设计了三种新型HTM(FDT-N、FDT-O和FDT-S)。然后我们进行了量子化学计算以研究它们的应用潜力。结果表明,用FDT-O和FDT-S替代FDT的器件可能由于其较低的最高占据分子轨道(HOMO)能级而具有更高的开路电压。此外,FDT-S在所研究的HTM中表现出最佳的空穴传输性能,这可能是由于在具有最大转移积分的空穴跳跃路径中存在显著的HOMO-HOMO重叠。此外,界面性质的结果表明引入氧原子和硫原子可以增强MAPbI/HTM界面相互作用。本工作不仅为PSC提供了两种有前景的HTM(FDT-O和FDT-S),还为后续HTM的研究提供了理论帮助。

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