Zhang Mengmeng, Zhou Weiran, Hu Wanpei, Li Bairu, Qiao Qiquan, Yang Shangfeng
Hefei National Laboratory for Physical Sciences at Microscale, CAS Key Laboratory of Materials for Energy Conversion, Department of Materials Science and Engineering, Synergetic Innovation Center of Quantum Information & Quantum Physics, University of Science and Technology of China, Hefei 230026, China.
Center for Advanced Photovoltaics, Department of Electrical Engineering and Computer Science, South Dakota State University, Brookings, South Dakota 57007, United States.
ACS Appl Mater Interfaces. 2020 Mar 18;12(11):12696-12705. doi: 10.1021/acsami.9b20402. Epub 2020 Mar 5.
Mesoporous-structure perovskite solar cells (meso-PVKSCs) have been widely utilized due to the achieved high efficiency for which the TiO layer usually suffers from sufficient electron trap states, low electron mobility, and inavoidable catalytic activity. Herein, a mesoporous TiO (m-TiO) layer is modified by tetraethylammonium -toluenesulfonate (abbreviated as TEATS) for the first time, leading to a significant photoelectric conversion efficiency enhancement from 19.14 to 20.69% for CsMAFAPbIBr (abbreviated as CsMAFA) meso-PVKSCs. In particular, the obtained champion open-circuit voltage () is 1.18 V, which is a record high value for meso-PVKSCs with CsMAFA triple cation mixed perovskite. A series of measurements were employed to investigate the influences of TEATS modification on the energy band structures of TiO as well as the CsMAFA perovskite layer atop, unveiling that TEATS modification benefits defect passivation of the TiO film along with a decrease in the work function of TiO. Besides, TEATS modification helps to improve the wettability of perovskite precursors on the m-TiO substrate, affording improved film quality of perovskite with enhanced crystallinity and grain size. Consequently, the trap states existed in the perovskite film can be passivated, and the interfacial charge recombination is suppressed. This further benefits the improvement of the ambient stability of devices.
介孔结构钙钛矿太阳能电池(meso-PVKSCs)因其实现的高效率而被广泛应用,然而其TiO层通常存在足够的电子陷阱态、低电子迁移率以及不可避免的催化活性问题。在此,首次用四乙基铵对甲苯磺酸盐(简称为TEATS)对介孔TiO(m-TiO)层进行改性,使得CsMAFAPbIBr(简称为CsMAFA)介孔PVKSCs的光电转换效率从19.14%显著提高到20.69%。特别地,所获得的最佳开路电压()为1.18 V,这对于具有CsMAFA三阳离子混合钙钛矿的介孔PVKSCs来说是一个创纪录的高值。采用一系列测量方法来研究TEATS改性对TiO以及顶部CsMAFA钙钛矿层能带结构的影响,结果表明TEATS改性有利于TiO薄膜的缺陷钝化,同时TiO的功函数降低。此外,TEATS改性有助于提高钙钛矿前驱体在m-TiO衬底上的润湿性,从而提高钙钛矿薄膜的质量,增强结晶度和晶粒尺寸。因此,钙钛矿薄膜中存在的陷阱态可以被钝化,界面电荷复合受到抑制。这进一步有利于提高器件的环境稳定性。