Li Xin, Tan Yao, Lai Hui, Li Shuiping, Chen Ying, Li Suwei, Xu Peng, Yang Junyou
ACS Appl Mater Interfaces. 2019 Aug 21;11(33):29746-29752. doi: 10.1021/acsami.9b06356. Epub 2019 Aug 8.
Nowadays, inorganic CsPbBr perovskite is emerging as a promising candidate as a light-absorbing layer in photovoltaic devices due to its excellent photoelectric property and superior stability under humidity and thermal attacks in comparison with organic cation-based hybrid perovskites. However, the impure perovskite phase and severe interfacial charge recombination have limited the further improvement of device performance. In this work, a vapor-assisted solution technique was introduced to prepare a high-purity CsPbBr film in a perovskite solar cell (PSC). To further reduce the electron-hole recombination and enhance charge extraction, we introduced the novel intermediate energy level of manganese sulfide (MnS) as a hole transport layer in CsPbBr PSC. The as-optimized CsPbBr PSC based on all-inorganic transport layers delivers a power conversion efficiency (PCE) of 10.45% in comparison with 8.16% for the device free of an intermediate layer, which is one of the highest PCEs achieved among the CsPbBr-based PSCs to date. Moreover, the optimized device retained 80% PCE of its initial efficiency over 90 days under 80% relative humidity at 85 °C, indicating an excellent environmental tolerance to boost the commercial application of low-cost, efficient, and stable all-inorganic PSCs.
如今,无机CsPbBr钙钛矿作为光伏器件中的吸光层正崭露头角,因其具有优异的光电性能,且与基于有机阳离子的混合钙钛矿相比,在湿度和热攻击下具有更高的稳定性。然而,不纯的钙钛矿相和严重的界面电荷复合限制了器件性能的进一步提升。在这项工作中,引入了一种气相辅助溶液技术来制备钙钛矿太阳能电池(PSC)中的高纯度CsPbBr薄膜。为了进一步减少电子 - 空穴复合并增强电荷提取,我们引入了新型的硫化锰(MnS)中间能级作为CsPbBr PSC中的空穴传输层。基于全无机传输层优化后的CsPbBr PSC的功率转换效率(PCE)为10.45%,而没有中间层的器件的PCE为8.16%,这是迄今为止基于CsPbBr的PSC中实现的最高PCE之一。此外,优化后的器件在85°C、相对湿度80%的条件下90天内保持了其初始效率的80%的PCE,表明其具有出色的环境耐受性,有助于推动低成本、高效且稳定的全无机PSC的商业应用。