论文标题
纳米级电荷积累及其对二甲酸钙钛矿结构中载体动力学的影响
Nanoscale charge accumulation and its effect on carrier dynamics in tri-cation perovskite structures
论文作者
论文摘要
通过扫描探针显微镜进行的纳米级调查为有机无机卤化物钙钛矿(OIHP)作为光电设备的快速发展提供了重大贡献。进一步改善设备级别的性能需要更深入地了解诸如离子迁移,相分离及其对纳米和宏观上电荷提取的影响等性能限制机制。在这里,我们通过采用常规和微秒的时间分辨的开尔文探针力显微镜(KPFM)来研究CS0.05(FA0.83-MA0.17)0.95pbi3-XBRX Perovskite结构的动态电响应。我们的结果表明,在照明时捕获强大的负电荷载体,并且在晶界处的电荷放松非常缓慢(> 1s)。通过时间分辨KPFM探测的微秒尺度上的快速电子重组和传输动力学显示,电荷载体向晶界扩散,并表明由于内在空间异质性而引起的局部重组率更高。纳米级静电效应总结在混合疗法CSFAMA的集体模型中。多层太阳能电池结构的结果在纳米级离子传输,电子积累,重组特性和最终设备性能之间取得了直接关系。我们的发现扩展了当前对稳定多燃料OIHP结构中复杂电荷载体动力学的理解。
Nanoscale investigations by scanning probe microscopy have provided major contributions to the rapid development of organic-inorganic halide perovskites (OIHP) as optoelectronic devices. Further improvement of device level properties requires a deeper understanding of the performance-limiting mechanisms such as ion migration, phase segregation and their effects on charge extraction both at the nano- and macroscale. Here, we have studied the dynamic electrical response of Cs0.05(FA0.83-MA0.17)0.95PbI3-xBrx perovskite structures by employing conventional and microsecond time-resolved Kelvin probe force microscopy (KPFM). Our results indicate strong negative charge carrier trapping upon illumination and very slow (>1s) relaxation of charges at the grain boundaries. The fast electronic recombination and transport dynamics on the microsecond scale probed by time-resolved KPFM show diffusion of charge carriers towards grain boundaries and indicate locally higher recombination rates due to intrinsic spatial heterogeneity. The nanoscale electrostatic effects revealed are summarized in a collective model for mixed-halide CsFAMA. Results on multilayer solar cell structures draw direct relations between nanoscale ionic transport, electron accumulation, recombination properties and the final device performance. Our findings extend the current understanding of complex charge carrier dynamics in stable multi-cation OIHP structures.