论文标题

半导体量子点中的等离子辅助两光子吸收 - 金属纳米壳复合材料

Plasmon-assisted two-photon absorption in a semiconductor quantum dot -- metallic nanoshell composite

论文作者

Nugroho, Bintoro S., Iskandar, Alexander A., Malyshev, Victor A., Knoester, Jasper

论文摘要

Tho-Photon吸收具有许多实际应用的潜力。从理论上讲,我们在半导体量子点(金属纳米壳复合材料)中研究了这种现象的发作,受到了谐振CW激发。该系统中的两光子吸收可能以两种方式发生:由于连贯的两光子过程,由于连续的地面到一偏见到 - 偏见和连贯的转变,因此不一致,涉及量子点中直接的地面至比例型转变。量子点附近的纳米壳的存在产生了两种主要效应:(i) - 量子点的共振频率和辐射弛豫率的重新归一化,均取决于量子点水平的种群。我们表明,在扰动状态下,当激子水平仅略有填充时,这些因素中的每一个都可能导致两光子吸收的抑制或增强。两者的复杂相互作用决定了最终效果。除了扰动制度之外,还发现两光子吸收经历了一种急剧增强,它独立于激发的类型发生,无论是在一个脱节的共振中还是在两光子共振中。复合材料的两光子吸收的其他特征,从两个纳米颗粒之间的耦合中浮现出来,是双构成性和自我振荡的。

Tho-photon absorption holds potential for many practical applications. We theoretically investigate the onset of this phenomenon in a semiconductor quantum dot -- metallic nanoshell composite subjected to a resonant CW excitation. Two-photon absorption in this system may occur in two ways: incoherent -- due to a consecutive ground-to-one-exciton-to-biexciton transition and coherent -- due to a coherent two-photon process, involving the direct ground-to-biexciton transition in the quantum dot. The presence of the nanoshell nearby the quantum dot gives rise to two principal effects: (i) -- renormalization of the applied field amplitude and (ii) -- renormalization of the resonance frequencies and radiation relaxation rates of the quantum dot, both depending on the the quantum dot level populations. We show that in the perturbation regime, when the excitonic levels are only slightly populated, each of these factors may give rise to either suppression or enhancement of the two-photon absorption. The complicated interplay of the two determines the final effect. Beyond the perturbation regime, it is found that the two-photon absorption experiences a drastic enhancement, which occurs independently of the type of excitation, either into the one-exciton resonance or into the two-photon resonance. Other characteristic features of the two-photon absorption of the composite, emerging from the coupling between both nanoparticles, are bistability and self-oscillations.

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