Enhanced fluorescence emission of a single quantum dot in a porous silicon photonic crystal—plasmonic hybrid resonator

E. Granizo, Irina Kriukova, Pedro Escudero-Villa, P. Samokhvalov, Igor Nabiev
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Abstract

Currently, much interest is attracted to investigating the potential of hybrid systems that exhibit plasmon-induced photoluminescence (PL) enhancement of quantum emitters in terms of optoelectronics and biosensing applications. The implementation of these systems based on photonic microcavities offers benefits due to a stronger localization of the field within the resonant cavity. Porous silicon is one of interesting materials for engineering such microcavities thanks to the simplicity of its fabrication and the possibility to embed emitters from the solution into a ready-made resonator. In this theoretical study, the fluorescence enhancement of a quantum dot (QD) in a hybrid system based on a porous silicon microcavity (pSiMC) and silver nanoplatelets (AgNPs) was investigated using finite element method (FEM) numerical simulations. For this purpose, infinite arrays were simulated by using a periodic unit cell. The pSiMC was designed as two λ/4 distributed Bragg reflectors with alternating refractive indices and a cavity layer of a double thickness between them. For comparison, simulations were also performed for an AgNP and a QD in a reference monolayer with a constant refractive index without a microcavity structure. The results show QD fluorescence enhancement in the AgNP/pSiMC hybrid system, mainly due to the higher excitation rate.
多孔硅光子晶体-等离子体混合谐振器中单个量子点的增强荧光发射
目前,研究量子发射器的等离子体诱导光致发光(PL)增强的混合系统在光电和生物传感应用方面的潜力引起了人们的极大兴趣。这些系统以光子微腔为基础,在谐振腔内实现更强的场定位,从而带来更多好处。多孔硅是设计此类微腔的有趣材料之一,因为其制造简单,而且可以将溶液中的发射器嵌入到现成的谐振器中。在这项理论研究中,使用有限元法(FEM)数值模拟研究了量子点(QD)在基于多孔硅微腔(pSiMC)和纳米银颗粒(AgNPs)的混合系统中的荧光增强。为此,使用周期性单元模拟了无限阵列。pSiMC 被设计成两个具有交替折射率的 λ/4 分布布拉格反射器,它们之间有一个双厚度的空腔层。为了进行比较,还对参考单层中的 AgNP 和 QD 进行了模拟,参考单层具有恒定的折射率,没有微腔结构。结果表明,在 AgNP/pSiMC 混合系统中,QD 的荧光增强主要是由于激发率较高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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