Lee Un-Hak, Azmi Randi, Sinaga Septy, Hwang Sunbin, Eom Seung Hun, Kim Tae-Wook, Yoon Sung Cheol, Jang Sung-Yeon, Jung In Hwan
Division of Advanced Materials, Korea Research Institute of Chemical Technology, Daejeon, 34114, Republic of Korea.
Chemical Convergence Materials, University of Science and Technology, Daejeon, 34113, Republic of Korea.
ChemSusChem. 2017 Oct 9;10(19):3780-3787. doi: 10.1002/cssc.201701526. Epub 2017 Sep 21.
The susceptibility of porphyrin derivatives to light-harvesting and charge-transport operations have enabled these materials to be employed in solar cell applications. The potential of porphyrin derivatives as hole-transporting materials (HTMs) for perovskite solar cells (PSCs) has recently been demonstrated, but knowledge of the relationships between the porphyrin structure and device performance remains insufficient. In this work, a series of novel zinc porphyrin (PZn) derivatives has been developed and employed as HTMs for low-temperature processed PSCs. Key to the design strategy is the incorporation of an electron-deficient pyridine moiety to down-shift the HOMO levels of porphyrin HTMs. The porphyrin HTMs incorporating diphenyl-2-pyridylamine (DPPA) have HOMO levels that are in good agreement with the perovskite active layers, thus facilitating hole transfers from the perovskite to the HTMs. The DPPA-containing zinc porphyrin-based PSCs gave the best performance, with efficiency levels comparable to those of PSCs using spiro-OMeTAD, a current state-of-the-art HTM. In particular, PZn-DPPA-based PSCs show superior air stability, in both doped and undoped forms, to spiro-OMeTAD based devices.
卟啉衍生物对光捕获和电荷传输操作的敏感性使这些材料能够应用于太阳能电池。最近已证明卟啉衍生物作为钙钛矿太阳能电池(PSC)的空穴传输材料(HTM)的潜力,但关于卟啉结构与器件性能之间关系的了解仍然不足。在这项工作中,已开发出一系列新型锌卟啉(PZn)衍生物,并将其用作低温处理PSC的HTM。设计策略的关键是引入缺电子吡啶部分以降低卟啉HTM的HOMO能级。掺入二苯基-2-吡啶胺(DPPA)的卟啉HTM的HOMO能级与钙钛矿活性层高度吻合,从而促进空穴从钙钛矿转移到HTM。含DPPA的锌卟啉基PSC表现出最佳性能,其效率水平与使用目前最先进的HTM螺环-OMeTAD的PSC相当。特别是,基于PZn-DPPA的PSC在掺杂和未掺杂形式下均表现出比基于螺环-OMeTAD的器件更好的空气稳定性。