俄歇效应
材料科学
重组
超快激光光谱学
热化
格子(音乐)
电子
激子
光谱学
俄歇电子能谱
化学物理
螺旋钻
空位缺陷
分子物理学
阴极发光
氧气
金属
量子点
凝聚态物理
纳米颗粒
光电子学
吸收光谱法
过渡金属
氧化物
原子物理学
自发辐射
扩散
超短脉冲
吸收(声学)
通量
半导体
化学
纳米晶
作者
Fuyong Hua,Zheng Zhang,Zhong Wang,Yang Liu,Can Gong,Chunlong Hu,Yinhua Zhou,W. K. Liang
标识
DOI:10.1021/acs.jpclett.5c03576
摘要
Surface effects and quantum confinement render nanomaterials' optoelectronic properties more susceptible to nonradiative processes than their bulk counterparts. These nonradiative processes usually contain a series of interwoven and competing subprocesses, which are challenging to disentangle. Here, we investigate the structural origin of Auger recombination in ZnO nanoparticles using transient absorption spectroscopy and ultrafast electron diffraction. The photogenerated hot holes are captured by oxygen vacancies via an excitonic Auger process, inducing significant local polaronic distortions around the oxygen vacancy and its neighboring zinc tetrahedron on a subpicosecond time scale. The recombination of trapped holes accelerates lattice thermalization and stabilizes the formed small hole polarons. Subsequently, the distorted lattice captures additional electrons in a conduction band, forming a long-lived (>6 ns) exciton-polaron complex that may account for the visible luminescence. Our findings are potentially applicable to other transition metal oxide nanomaterials, bringing insights for optimizing their functional properties.
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