论文标题

从金属卤化物晶体中自捕获的激子的理论和实验宽带光发射

Theory and Experiments of Pressure-Tunable Broadband Light Emission from Self-Trapped Excitons in Metal Halide Crystals

论文作者

Dai, Shenyu, Xing, Xinxin, Hadjiev, Viktor G., Qin, Zhaojun, Tong, Tian, Yang, Guang, Wang, Chong, Hou, Lijuan, Deng, Liangzi, Wang, Zhiming, Feng, Guoying, Bao, Jiming

论文摘要

静水压力通常用于钙钛矿中自被捕的激子(Ste)的调谐宽带光发射,用于产生白光和基本电子 - 音波相互作用的研究。但是,仍然缺乏一般理论来理解Ste排放的压力驱动的演变。在这项工作中,我们首先确定了一种理论模型,该模型可以预测静液压对Ste发射光谱的影响,然后报告观察到极度宽带光致发​​光发射及其在2D间接带隙CSPB2BR5晶体中的广泛压力频谱调整。在对Ste发射的特殊实验观察的理论和实验之间,具有恒定的光谱带宽,但在压力低于2 GPA的情况下线性地增加能量。通过高压下的理论和实验进行进一步的分析表明,两种类型的Ste参与了,并且对外部压力的反应也有所不同。随后,我们的调查发表了Ste排放,并发现大多数在压力下显示出光谱蓝移,如该理论所预测的那样。通过坐标构型图识别适当的理论模型及其应用于Ste发射的应用为工程铺平了ste发射和对电子波相互作用的基本理解。

Hydrostatic pressure has been commonly applied to tune broadband light emissions from self-trapped excitons (STE) in perovskites for producing white light and study of basic electron-phonon interactions. However, a general theory is still lacking to understand pressure-driven evolution of STE emissions. In this work we first identify a theoretical model that predicts the effect of hydrostatic pressure on STE emission spectrum, we then report the observation of extremely broadband photoluminescence emission and its wide pressure spectral tuning in 2D indirect bandgap CsPb2Br5 crystals. An excellent agreement is found between the theory and experiment on the peculiar experimental observation of STE emission with a nearly constant spectral bandwidth but linearly increasing energy with pressure below 2 GPa. Further analysis by the theory and experiment under higher pressure reveals that two types of STE are involved and respond differently to external pressure. We subsequently survey published STE emissions and discovered that most of them show a spectral blue-shift under pressure, as predicted by the theory. The identification of an appropriate theoretical model and its application to STE emission through the coordinate configuration diagram paves the way for engineering the STE emission and basic understanding of electron-phonon interaction.

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