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HgTe 胶体量子点中的多激子产生和超快激子动力学。

Multiple exciton generation and ultrafast exciton dynamics in HgTe colloidal quantum dots.

机构信息

School of Physics and Astronomy & Photon Science Institute, University of Manchester, Oxford Road, Manchester M13 9PL, UK.

出版信息

Phys Chem Chem Phys. 2013 Oct 21;15(39):16864-73. doi: 10.1039/c3cp52574k. Epub 2013 Sep 3.

DOI:10.1039/c3cp52574k
PMID:23999734
Abstract

The investigation of sub-nanosecond exciton dynamics in HgTe colloidal quantum dots using ultrafast transient absorption spectroscopy is reported. The transmittance change spectrum acquired immediately after pumping is dominated by a bleach blue-shifted by ~200-300 nm from the photoluminescent emission band. Comparison with a tight-binding model of the electronic structure allows this feature to be attributed to the filling of band edge states. The form of the pump-induced transmittance transients is dependent on the excitation rate and the rate of sample stirring. For moderate pumping of stirred samples, the transmittance transients are well-described by a mono-exponential decay associated with biexciton recombination, with a lifetime of 49 ± 2 ps. For samples that are strongly-pumped or unstirred, the decay becomes bi-exponential in form, indicating that trap-related recombination has become significant. We also present a new analysis that enables fractional transmittance changes to be related to band edge occupation for samples with arbitrary optical density at the pump wavelength. This allows us to identify the occurrence of multiple exciton generation, which results in a quantum yield of 1.36 ± 0.04 for a photon energy equivalent to 3.1 times the band gap, in good agreement with the results of the model.

摘要

本文报道了利用超快瞬态吸收光谱研究 HgTe 胶体量子点中亚纳秒激子动力学的研究。泵浦后立即获得的透射率变化光谱主要由一个从光致发光发射带蓝移约 200-300nm 的漂白组成。与电子结构的紧束缚模型进行比较,将这一特征归因于能带边缘态的填充。泵浦诱导的透射率瞬变的形式取决于激发速率和样品搅拌速率。对于搅拌样品的中等激发,透射率瞬态可以很好地用与双激子复合相关的单指数衰减来描述,寿命为 49±2ps。对于强泵浦或未搅拌的样品,衰减形式呈双指数,表明与陷阱相关的复合变得显著。我们还提出了一种新的分析方法,该方法能够将任意光密度下的样品的分数透射率变化与带边缘占据相关联。这使我们能够识别多激子生成的发生,对于相当于 3.1 倍带隙的光子能量,量子产率为 1.36±0.04,与模型的结果非常吻合。

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