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首页> 外文期刊>Physical review. B, Condensed Matter And Materials Physics >Fast electronic relaxation in metal nanoclusters via excitation of coherent shape deformations
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Fast electronic relaxation in metal nanoclusters via excitation of coherent shape deformations

机译:通过激发相干形状变形在金属纳米团簇中实现快速电子弛豫

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摘要

Electron-phonon relaxation in size-quantized systems may become inhibited when the spacing of discrete electron energy levels exceeds the magnitude of the phonon frequency. We show, however, that nanoclusters can support a fast nonradiative relaxation channel which derives from their distinctive ability to undergo Jahn-Teller shape deformations. Such a deformation represents a collective and coherent vibrational excitation and enables electronic transitions to occur without a multiphonon bottleneck. We analyze this mechanism for a metal cluster within the analytical framework of a three-dimensional potential well undergoing a spheroidal distortion. An expression for the time evolution of the distortion parameter is derived, the electronic level crossing condition formulated, and the probability of electronic transition at a level crossing is evaluated. An application to electron-hole recombination in a closed-shell aluminum cluster with 40 electrons shows that the short (~250 fs) excitation lifetime observed in recent pump-probe experiments can be explained by the proposed mechanism.
机译:当离散电子能级的间距超过声子频率的幅度时,尺寸量化系统中的电子声子弛豫可能会受到抑制。但是,我们表明,纳米团簇可以支持快速的非辐射弛豫通道,这是由于它们具有经历Jahn-Teller形状变形的独特能力。这种变形代表了集体和相干的振动激励,并使电子跃迁发生而没有多声子瓶颈。我们分析这种金属团簇的机理,该团簇在经历球形变形的三维势阱的分析框架内。导出了失真参数随时间变化的表达式,制定了电子能级穿越条件,并评估了能级穿越时电子跃迁的可能性。在具有40个电子的闭壳铝团簇中对电子-空穴复合的应用表明,通过提出的机理可以解释最近在泵浦探针实验中观察到的短(〜250 fs)激发寿命。

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