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氧化锌量子点中激子发射的尺寸依赖性非连续衰减率。

A size dependent discontinuous decay rate for the exciton emission in ZnO quantum dots.

作者信息

Jacobsson T Jesper, Viarbitskaya Sviatlana, Mukhtar Emad, Edvinsson Tomas

机构信息

Department of Chemistry - Ångström Laboratry, Uppsala University, Box 538, 75121 Uppsala, Sweden.

出版信息

Phys Chem Chem Phys. 2014 Jul 21;16(27):13849-57. doi: 10.1039/c4cp00254g. Epub 2014 Mar 21.

Abstract

The time resolved UV-fluorescence in ZnO quantum dots has been investigated using femtosecond laser spectroscopy. The measurements were performed as a function of particle size for particles between 3 and 7 nm in diameter, which are in the quantum confined regime. A red shift in the fluorescence maximum is seen while increasing the particle size, which correlates with the shift in band gap due to quantum confinement. The energy difference between the UV-fluorescence and the band gap does, however, increase for the smaller particles. For 3.7 nm particles the fluorescence energy is 100 meV smaller than the band gap energy, whereas it is only 20 meV smaller for the largest particles. This indicates a stabilization of the excitons in the smallest particles. The lifetime of the UV fluorescence is in the picosecond time scale and interestingly, it is discontinuous with respect to particle size. For the smallest particles, the exciton emission life time reaches 30 ps, which is three times longer than that for the largest particles. This demonstrates a transition between two different mechanisms for the UV-fluorescence. We suggest that this is an effect of surface trapping and stabilization of the excitons occurring in the smallest particles but not in the larger ones. We also discuss the time scale limit for slowed hot carrier dynamics in ensembles of quantum confined ZnO particles.

摘要

利用飞秒激光光谱对氧化锌量子点中的时间分辨紫外荧光进行了研究。测量是针对直径在3到7纳米之间处于量子限制区域的粒子,作为粒径的函数进行的。随着粒径增加,荧光最大值出现红移,这与量子限制导致的带隙移动相关。然而,对于较小的粒子,紫外荧光与带隙之间的能量差确实会增加。对于3.7纳米的粒子,荧光能量比带隙能量小100毫电子伏特,而对于最大的粒子,该差值仅为20毫电子伏特。这表明在最小的粒子中激子得到了稳定。紫外荧光的寿命在皮秒时间尺度,有趣的是,它相对于粒径是不连续的。对于最小的粒子,激子发射寿命达到30皮秒,这比最大粒子的寿命长三倍。这证明了紫外荧光存在两种不同机制之间的转变。我们认为这是由于在最小的粒子中发生了激子的表面俘获和稳定,而在较大的粒子中没有。我们还讨论了量子限制氧化锌粒子集合体中热载流子动力学减慢的时间尺度极限。

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