Ren Lixia, Wang Min, Wang Shuanhu, Yan Hong, Zhang Zhan, Li Ming, Zhang Zhaoting, Jin Kexin
Shaanxi Key Laboratory of Condensed Matter Structures and Properties, School of Natural and Applied Science , Northwestern Polytechnical University , Xi'an 710072 , China.
ACS Appl Mater Interfaces. 2019 May 1;11(17):16174-16180. doi: 10.1021/acsami.9b01506. Epub 2019 Apr 17.
The compositional doping techniques can delicately tune the band gap, carrier concentration, and mobility of perovskites to optimize the photoelectric properties of materials. It is reported that the doped perovskites have been widely researched in the photovoltaic and photoelectronic field. Here, we show that the photoluminescence intensity and carrier lifetime of CHNHPbI films have been improved by 3 orders of magnitude by incorporating abundant MnAc·4HO in the perovskite precursor solution, which benefits from the morphological change and surface passivation induced by hydration water and surface manganese acetate. We also witness the increased photoluminescence quantum yield for film and the changed power conversion efficiency for perovskite solar cells. More importantly, the enhanced chemical stability of perovskite is displayed by immersing films into the water.
成分掺杂技术可以精确调节钙钛矿的带隙、载流子浓度和迁移率,以优化材料的光电性能。据报道,掺杂钙钛矿在光伏和光电子领域已得到广泛研究。在此,我们表明,通过在钙钛矿前驱体溶液中加入大量的MnAc·4H₂O,CH₃NH₃PbI₃薄膜的光致发光强度和载流子寿命提高了3个数量级,这得益于水化水和表面醋酸锰引起的形貌变化和表面钝化。我们还观察到薄膜的光致发光量子产率增加,以及钙钛矿太阳能电池的功率转换效率发生变化。更重要的是,通过将薄膜浸入水中,展示了钙钛矿增强的化学稳定性。