论文标题

在生物启发的大道纳米光子设备中控制单量子发射器

Control of single quantum emitters in bio-inspired aperiodic nano-photonic devices

论文作者

Trojak, Oliver J., Gorsky, Sean, Murray, Connor, Sgrignuoli, Fabrizio, Pinheiro, Felipe Arruda, Park, Suk-In, Song, Jin Dong, Negro, Luca Dal, Sapienza, Luca

论文摘要

增强芯片上的光 - 物质相互作用对于研究纳米和量子光学效果并实现集成的设备,例如,对于经典和量子光子,传感和能量收集应用至关重要。工程的纳米设备可以有效地限制光线,并控制单个发射器的自发发射动力学,这对于腔量子量子电动力学实验至关重要,对于经典和量子光源的发展至关重要。在这里,我们报告了基于在硝酸硅和砷化烷化的生物启发的大道设备基于生物启发的大道设备,展示了增强的光结合相互作用和purcell效果。内部光源,即硝酸硅和砷酰胺单量子点中的光学活性缺陷中心,用于通过微型发光光谱法来形象和表征,该光谱光谱谱图由光子膜限制在具有Vogel-Spir-Spiral-Spiral-Spiral-Spiral Seemotry。通过研究测得的光谐振的统计数据,与严格的多重散射理论合作,我们观察到对数正态分布和报告质量因素的值高达2201 +/- 443。在这个新颖的平台中实现的强光限制的基础上,我们进一步研究了单个半导体量子点与密闭光学模式的耦合。我们的结果表明,空腔量子电动力学效应可对单个光学过渡的自发发射衰变进行牢固的修改:我们显示了对单个发射器的衰减生命的控制,动态范围达到20。我们的发现提高了我们对vogel-Spiral septim in Quantim intermistim for Quante septim for Quantem septim for Quantum pastive septims for Quantem septim for Quantum phototim septim a in量子的理解,并展示了量子的量子,并取得了量子的量子,并取得了量子的光电设备,并取得了量子的光电设备。 芯片。

Enhancing light-matter interactions on a chip is of paramount importance to study nano- and quantum optics effects and to realise integrated devices, for instance, for classical and quantum photonics, sensing and energy harvesting applications. Engineered nano-devices enable the efficient confinement of light and the control of the spontaneous emission dynamics of single emitters, which is crucial for cavity quantum electrodynamics experiments and for the development of classical and quantum light sources. Here, we report on the demonstration of enhanced light-matter interaction and Purcell effects on a chip, based on bio-inspired aperiodic devices fabricated in silicon nitride and gallium arsenide. Internal light sources, namely optically-active defect centers in silicon nitride and indium arsenide single quantum dots, are used to image and characterize, by means of micro-photoluminescence spectroscopy, the individual optical modes confined by photonic membranes with Vogel-spiral geometry. By studying the statistics of the measured optical resonances, in partnership with rigorous multiple scattering theory, we observe log-normal distributions and report quality factors with values as high as 2201+/-443. Building on the strong light confinement achieved in this novel platform, we further investigate the coupling of single semiconductor quantum dots to the confined optical modes. Our results show cavity quantum electrodynamics effects providing strong modifications of the spontaneous emission decay of single optical transitions: we show control of the decay lifetime of single emitters with a dynamic range reaching 20. Our findings improve the understanding of the fundamental physical properties of light-emitting Vogel-spiral systems, show their application to quantum photonic devices, and form the basis for the further development of classical and quantum active devices on a chip.

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