School of Energy Research, Xiang'an Campus, Xiamen University , Xiamen 361100, Fujian China.
Renewable Energy Research Group (RERG), Department of Building Services Engineering, The Hong Kong Polytechnic University , Hong Kong, China.
ACS Appl Mater Interfaces. 2017 Apr 26;9(16):14129-14135. doi: 10.1021/acsami.7b00576. Epub 2017 Apr 11.
Interfacial materials play a critical role in photoelectric conversion properties as well as the anomalous hysteresis phenomenon of the perovskite solar cells (PSCs). In this article, a water-soluble polythiophene PTEBS was employed as a cathode interfacial material for PSCs. Efficient energy level aligning and improved film morphology were obtained due to an ultrathin coating of PTEBS. Better ohmic contact between the perovskite layer and the cathode also benefits the charge transport and extraction of the device. Moreover, less charge accumulation at the interface weakens the polarization of the perovskite resulting in a relatively quick response of the modified device. The ITO/PTEBS/CHNHPbI/spiro-MeOTAD/Au cells by an all low-temperature process achieved power conversion efficiencies of up to 15.4% without apparent hysteresis effect. Consequently, the utilization of this water-soluble polythiophene is a practical approach for the fabrication of highly efficient, large-area, and low-cost PSCs and compatible with low-temperature solution process, roll-to-roll manufacture, and flexible application.
界面材料在光电转换性能以及钙钛矿太阳能电池(PSCs)的异常滞后现象中起着关键作用。在本文中,一种水溶性聚噻吩 PTEBS 被用作 PSCs 的阴极界面材料。由于 PTEBS 的超薄涂层,获得了高效的能级对准和改善的薄膜形貌。钙钛矿层和阴极之间更好的欧姆接触也有利于器件的电荷输运和提取。此外,界面处的电荷积累减少会削弱钙钛矿的极化,从而使改性器件的响应速度相对较快。通过全低温工艺制备的 ITO/PTEBS/CHNHPbI/spiro-MeOTAD/Au 器件的功率转换效率高达 15.4%,且没有明显的滞后效应。因此,这种水溶性聚噻吩的利用为高效、大面积、低成本 PSCs 的制备提供了一种实用方法,并且与低温溶液工艺、卷对卷制造和柔性应用兼容。