Athapaththu Deepani V, Kordesch Martin E, Chen Jixin
J Phys Chem Lett. 2024 Feb 1;15(4):1105-1111. doi: 10.1021/acs.jpclett.3c03280. Epub 2024 Jan 23.
Mixed halide perovskites (MHPs) are a group of semiconducting materials with promising applications in optoelectronics and photovoltaics, whose bandgap can be altered by adjusting the halide composition. However, the current challenge is to stabilize the light-induced halide separation, which undermines the device's performance. Herein we track down the phase separation dynamics of CsPbBrI MHP single cubic nanocrystals (NCs) and clusters as a function of time by fluorescence spectromicroscopy. The particles were sorted into groups 1 and 2 using initial photoluminescence intensities. The phase separation followed by recovery kinetics under dark and photo blinking analysis suggests that group 1 behaved more like single NCs and group 2 behaved like clusters. Under the 0.64 W/cm laser illumination, the phase shifts for single NCs are 3.4 ± 1.9 nm. The phase shifts are linearly correlated with the initial photoluminescence intensities of clusters, suggesting possible interparticle halide transportation.
混合卤化物钙钛矿(MHP)是一类在光电子学和光伏领域具有广阔应用前景的半导体材料,其带隙可通过调整卤化物组成来改变。然而,当前的挑战是稳定光致卤化物分离,这会削弱器件的性能。在此,我们通过荧光光谱显微镜追踪CsPbBrI MHP单立方纳米晶体(NCs)和团簇的相分离动力学随时间的变化。利用初始光致发光强度将颗粒分为1组和2组。暗态和光闪烁分析下的相分离及恢复动力学表明,1组的行为更像单个NCs,2组的行为像团簇。在0.64 W/cm的激光照射下,单个NCs的相移为3.4±1.9 nm。相移与团簇的初始光致发光强度呈线性相关,表明可能存在颗粒间的卤化物传输。