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Dual Additive for Simultaneous Improvement of Photovoltaic Performance and Stability of Perovskite Solar Cell

机译:用于同时提高光伏性能和钙钛矿太阳能电池稳定性的双添加剂

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Additive engineering is one of the most efficient approaches to improve not only photovoltaic performance but also phase stability of formamidinium (FA)-based perovskite. Chlorine-based additives, such as methylammonium chloride (MACl), have been in general used to improve phase stability of FAPbI(3), which however often leads to loss of open-circuit voltage V-oc, accompanied by instability of the perovskite phase due to the volatile nature of the MA cation. A dual additive strategy for improving V-oc and thereby the overall efficiency are reported here. The mixing ratio of MACl to CsCl is varied from [MACl]/[CsCl] = 4 to 1, where V-oc increases with decreasing the ratio and best performance is achieved from [MACl]/[CsCl] = 2. As compared to the single source of MACl, the addition of CsCl reduces trap density and increases resistance against charge recombination, which is responsible for the increased V-oc. Moreover, defect passivation achieved by dual additive enables better stability than the single additive MACl as confirmed by long-term stability tests with unencapsulated devices for 50 days under relative humidity of about 40% at room temperature. The best power conversion efficiency of 23.22% is achieved by dual additive, which is higher than that for single additive of MACl or CsCl.
机译:添加剂工程是最有效的方法之一,不仅改善光伏性能,而且还具有甲脒(FA)的相位稳定性。基于钙钛矿。氯基添加剂如氯化甲基氯化甲基氯化铵(Mac1)一般用于改善FAPBI(3)的相位稳定性,然而通常导致开路电压V-OC的损耗,伴随着钙钛矿相的不稳定性由于MA阳离子的挥发性。在此报告了一种改善V-OC的双层添加策略,从而报告了整体效率。 MAC1至CSCL的混合比从[MAC1] / [CSCL] = 4变化,其中V-OC随比[MAC1] / [CSCL] = 2的比率而增加。与MAC1的单一来源,CSCL的加入降低了捕集密度并增加了对电荷重组的阻力,这对V-OC的增加负责。此外,通过双添加剂实现的缺陷钝化使得能够比单一添加剂MAC1更好地稳定性,如在室温下相对湿度下的长期稳定性试验的长期稳定性试验所确认的,在室温下约40%。通过双添加剂实现23.22%的最佳功率转换效率,其高于MAC1或CSCL的单个添加剂的效率。

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