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Fano Effect and Quantum Entanglement in Hybrid Semiconductor Quantum Dot-Metal Nanoparticle System

机译:混合半导体量子点-金属纳米粒子系统中的费诺效应和量子纠缠

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摘要

In this paper, we review the investigation for the light-matter interaction between surface plasmon field in metal nanoparticle (MNP) and the excitons in semiconductor quantum dots (SQDs) in hybrid SQD-MNP system under the full quantum description. The exciton-plasmon interaction gives rise to the modified decay rate and the exciton energy shift which are related to the exciton energy by using a quantum transformation method. We illustrate the responses of the hybrid SQD-MNP system to external field, and reveal Fano effect shown in the absorption spectrum. We demonstrate quantum entanglement between two SQD mediated by surface plasmon field. In the absence of a laser field, concurrence of quantum entanglement will disappear after a few ns. If the laser field is present, the steady states appear, so that quantum entanglement produced will reach a steady-state entanglement. Because one of all optical pathways to induce Fano effect refers to the generation of quantum entangled states, It is shown that the concurrence of quantum entanglement can be obtained by observation for Fano effect. In a hybrid system including two MNP and a SQD, because the two Fano quantum interference processes share a segment of all optical pathways, there is correlation between the Fano effects of the two MNP. The investigations for the light-matter interaction in hybrid SQD-MNP system can pave the way for the development of the optical processing devices and quantum information based on the exciton-plasmon interaction.
机译:在完整的量子描述下,我们综述了混合SQD-MNP系统中金属纳米粒子(MNP)中的表面等离子体激元与半导体量子点(SQDs)中的激子之间的光-质相互作用的研究。激子-等离激元相互作用通过量子变换方法产生了与激子能量有关的修正衰减率和激子能量位移。我们说明了混合SQD-MNP系统对外部场的响应,并揭示了吸收光谱中显示的Fano效应。我们证明了由表面等离激元场介导的两个SQD之间的量子纠缠。在没有激光场的情况下,量子纠缠的并发将在几ns后消失。如果存在激光场,则会出现稳态,因此产生的量子纠缠将达到稳态纠缠。因为诱导范诺效应的所有光路之一是指量子纠缠态的产生,所以表明通过观察法诺效应可以获得量子纠缠的同时发生。在包括两个MNP和一个SQD的混合系统中,由于两个Fano量子干涉过程共享所有光路的一部分,因此两个MNP的Fano效应之间存在相关性。对混合SQD-MNP系统中光-质相互作用的研究可以为基于激子-等离子体激元相互作用的光学处理装置和量子信息的发展铺平道路。

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