光致发光
卤化物
化学
激子
量子产额
钙钛矿(结构)
金属卤化物
结合能
金属
表征(材料科学)
量子阱
化学物理
光电子学
凝聚态物理
原子物理学
纳米技术
无机化学
光学
结晶学
材料科学
物理
荧光
有机化学
激光器
作者
Yingqi Wang,Songhao Guo,Hui Luo,Chenkun Zhou,Haoran Lin,Xuedan Ma,Qingyang Hu,Mao‐Hua Du,Biwu Ma,Wenge Yang,Xujie Lü
摘要
Low-dimensional perovskite-related metal halides have emerged as a new class of light-emitting materials with tunable broadband emission from self-trapped excitons (STEs). Although various types of low-dimensional structures have been developed, fundamental understating of the structure–property relationships for this class of materials is still very limited, and further improvement of their optical properties remains greatly important. Here, we report a significant pressure-induced photoluminescence (PL) enhancement in a one-dimensional hybrid metal halide C4N2H14PbBr4, and the underlying mechanisms are investigated using in situ experimental characterization and first-principles calculations. Under a gigapascal pressure scale, the PL quantum yields (PLQYs) were quantitatively determined to show a dramatic increase from the initial value of 20% at ambient conditions to over 90% at 2.8 GPa. With in situ characterization of photophysical properties and theoretical analysis, we found that the PLQY enhancement was mainly attributed to the greatly suppressed nonradiative decay. Pressure can effectively tune the energy level of self-trapped states and increase the exciton binding energy, which leads to a larger Stokes shift. The resulting highly localized excitons with stronger binding reduce the probability for carrier scattering, to result in the significantly suppressed nonradiative decay. Our findings clearly show that the characteristics of STEs in low-dimensional metal halides can be well-tuned by external pressure, and enhanced optical properties can be achieved.
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