首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Light amplification in the single-exciton regime using exciton-exciton repulsion in Type-II nanocrystal quantum dots
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Light amplification in the single-exciton regime using exciton-exciton repulsion in Type-II nanocrystal quantum dots

机译:II型纳米晶体量子点中使用激子-激子斥力的单激子形式的光放大

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Optical gain in ultrasmall semiconductor nanocrystals requires that some of the nanoparticles in the ensemble be excited with multiple electron-hole pairs (multiexcitons). A significant complication arising from this multiexciton nature of optical amplification is the ultrafast gain decay induced by nonradiative Auger recombination. Here, we develop a simple model for analyzing optical gain in the nanocrystals in the presence of exciton-exciton (X-X) interactions. This analysis indicates that if the X-X interaction is repulsive and its energy is large compared to the ensemble line width of the emitting transition, optical gain can occur in the single-exciton regime without involvement of multiexcitons. We further analyze theoretically and experimentally X-X interactions in type-II heteronanocrystals of US (core)/ZnSe (shell) and ZnTe (core)/CdSe (shell) and show that they can produce giant repulsion energies of more than 100 meV resulting from a significant local charge density generated as a result of spatial separation between electrons and holes. We observe that the dynamical and spectral properties of optical gain in type-II nanocrystals are distinctly different from those of multiexciton gain in traditional type-l nanocrystals and are consistent with those expected for the single-exciton regime. An important implication of these results is the possibility of a significant increase in the optical-gain lifetime, which could simplify applications of chemically synthesized nanocrystals in practical lasing technologies and perhaps allow for lasing using electrical injection.
机译:超小型半导体纳米晶体中的光学增益要求集合中的某些纳米颗粒被多个电子-空穴对(多激子)激发。由光放大的这种多激子性质引起的显着并发症是由非辐射俄歇重组引起的超快增益衰减。在这里,我们开发了一个简单的模型,用于分析在存在激子-激子(X-X)相互作用的情况下纳米晶体中的光学增益。该分析表明,如果X-X相互作用是排斥性的,并且其能量与发射跃迁的集合线宽相比较大,则在单激子状态下可以发生光学增益,而不会涉及多激子。我们进一步分析从理论上和实验上US(核)/ ZnSe(壳)和ZnTe(核)/ CdSe(壳)的II型杂纳米晶体中的XX相互作用,并显示它们可以产生大于100 meV的巨大排斥能由于电子和空穴之间的空间分隔而产生的显着局部电荷密度。我们观察到,II型纳米晶体中光学增益的动力学和光谱特性与传统的I型纳米晶体中的多激子增益明显不同,并且与单激子态预期的一致。这些结果的重要含义是可能显着增加光学增益寿命,这可以简化化学合成的纳米晶体在实际激光技术中的应用,并可能允许使用电注入进行激光发射。

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