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烷氧基链长度对用于高效钙钛矿太阳能电池的二维扩展薁核基空穴传输材料性能的影响

Influence of Alkoxy Chain Length on the Properties of Two-Dimensionally Expanded Azulene-Core-Based Hole-Transporting Materials for Efficient Perovskite Solar Cells.

作者信息

Truong Minh Anh, Lee Jaehyun, Nakamura Tomoya, Seo Ji-Youn, Jung Mina, Ozaki Masashi, Shimazaki Ai, Shioya Nobutaka, Hasegawa Takeshi, Murata Yasujiro, Zakeeruddin Shaik Mohammed, Grätzel Michael, Murdey Richard, Wakamiya Atsushi

机构信息

Institute for Chemical Research, Kyoto University, Uji, Kyoto, 611-0011, Japan.

Laboratory of Photonics and Interfaces, Institute of Chemical Sciences and Engineering, École Polytechnique Fédérale de Lausanne (EPFL), Station 6, CH-1015, Lausanne, Switzerland.

出版信息

Chemistry. 2019 May 10;25(27):6741-6752. doi: 10.1002/chem.201806317. Epub 2019 Mar 29.

Abstract

A series of two-dimensionally expanded azulene-core-based π systems have been synthesized with different alkyl chain lengths in the alkoxy moieties connected to the partially oxygen-bridged triarylamine skeletons. The thermal, photophysical, and electronic properties of each compound were evaluated to determine the influence of the alkyl chain length on their effectiveness as hole-transporting materials (HTMs) in perovskite solar cells (PSCs). All the synthesized molecules showed promising material properties, including high solubility, the formation of flat and amorphous films, and optimal alignment of energy levels with perovskites. In particular, the derivatives with methyl and n-butyl in the side chains retained amorphous stability up to 233 and 159 °C, respectively. Such short alkoxy chains also resulted in improved electrical device properties. The PSC device fabricated with the HTM with n-butyl side chains showed the best performance with a power conversion efficiency of 18.9 %, which compares favorably with that of spiro-OMeTAD-based PSCs (spiro-OMeTAD=2,2',7,7'-tetrakis[N,N-bis(p-methoxyphenyl)amino]-9,9'-spirobifluorene).

摘要

已经合成了一系列二维扩展的薁核基π体系,这些体系在与部分氧桥连的三芳基胺骨架相连的烷氧基部分具有不同的烷基链长度。对每种化合物的热、光物理和电子性质进行了评估,以确定烷基链长度对其作为钙钛矿太阳能电池(PSC)中空穴传输材料(HTM)有效性的影响。所有合成的分子都表现出有前景的材料性质,包括高溶解性、形成平整的非晶薄膜以及与钙钛矿的能级最佳对齐。特别是,侧链带有甲基和正丁基的衍生物分别在高达233和159 °C时保持非晶稳定性。这样的短烷氧基链也导致了改善的电子器件性能。用带有正丁基侧链的HTM制备的PSC器件表现出最佳性能,功率转换效率为18.9 %,与基于螺环-OMeTAD的PSC(螺环-OMeTAD = 2,2',7,7'-四[N,N-双(对甲氧基苯基)氨基]-9,9'-螺二芴)相比具有优势。

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