Nishimura Hidetaka, Okada Iku, Tanabe Taro, Nakamura Tomoya, Murdey Richard, Wakamiya Atsushi
Fine Chemicals R&D, Toda Research Center, Tokyo Chemical Industry Company Ltd., Toda, Saitama 335-0033, Japan.
Institute for Chemical Research, Kyoto University, Uji, Kyoto 611-0011, Japan.
ACS Appl Mater Interfaces. 2020 Jul 22;12(29):32994-33003. doi: 10.1021/acsami.0c06055. Epub 2020 Jul 9.
A series of cost-effective hole-transporting materials (TOP-HTMs) for perovskite solar cells (PSCs) was designed and synthesized. The molecules, composed of multiple 4,4'-dimethoxytriphenylamines linked to a benzene core via -vinylene units, can be manufactured from inexpensive materials through a simple synthetic route. The photophysical, electrochemical, and thermal properties, as well as hole mobilities, were strongly influenced by the position and number of vinyl triarylamine substituents on the core benzene ring. CHNHPbI-based solar cells using the X-shaped with additives gave a high power conversion efficiency of 17.5% (forward scan)/18.6% (reverse scan). Crucially, TOP-HTMs gave high working device efficiency without the need for conduction-enhancing additives. The power conversion efficiency for the device with additive-free was 16.0% (forward scan)/16.6% (reverse scan). Device stability is also enhanced and is superior to the reference HTM, 2,2',7,7'-tetrakis(,-di--methoxyphenylamine)-9,9'-spirobifluorene (Spiro-OMeTAD).
设计并合成了一系列用于钙钛矿太阳能电池(PSC)的具有成本效益的空穴传输材料(TOP-HTM)。这些分子由多个通过-亚乙烯基单元连接到苯核的4,4'-二甲氧基三苯胺组成,可以通过简单的合成路线由廉价材料制备。核心苯环上乙烯基三芳基胺取代基的位置和数量对光物理、电化学和热性能以及空穴迁移率有很大影响。使用带有添加剂的X形结构的基于CHNHPbI的太阳能电池正向扫描时功率转换效率高达17.5%,反向扫描时为18.6%。至关重要的是,TOP-HTM无需传导增强添加剂就能实现高工作器件效率。无添加剂结构的器件功率转换效率为16.0%(正向扫描)/16.6%(反向扫描)。器件稳定性也得到增强,且优于参考空穴传输材料2,2',7,7'-四(-二-甲氧基苯胺)-9,9'-螺二芴(Spiro-OMeTAD)。