Vijin Kizhake Veetil, Junyeob Song, Pradeep N. Namboodiri, Nikki Ebadollahi, Ashish Chanana, Aaron M. Katzenmeyer, Christian Pederson, Joshua M. Pomeroy, Jeffrey Chiles, Jeffrey Shainline, Kartik Srinivasan, Marcelo Davanco, Matthew Pelton
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We observe a ≈5-fold enhancement in the photon collection efficiency (the fraction of photons extracted from the sample and coupled into a single-mode fiber), corresponding to an estimated ≈11-fold enhancement in the photon extraction efficiency (the fraction of photons collected by the first lens above the sample). For these cavities, we observe lifetime reduction by a factor of <jats:inline-formula> <jats:alternatives> <m:math xmlns:m=\"http://www.w3.org/1998/Math/MathML\" overflow=\"scroll\"> <m:mo>≈</m:mo> <m:mn>1.3</m:mn> </m:math> <jats:tex-math>${\\approx} 1.3$</jats:tex-math> <jats:inline-graphic xmlns:xlink=\"http://www.w3.org/1999/xlink\" xlink:href=\"graphic/j_nanoph-2024-0485_ineq_001.png\"/> </jats:alternatives> </jats:inline-formula>. For W centers in resonant bowtie-shaped cavities, we observed a ≈3-fold enhancement in the photon collection efficiency, corresponding to a ≈6-fold enhancement in the photon extraction efficiency, and observed a lifetime reduction factor of <jats:inline-formula> <jats:alternatives> <m:math xmlns:m=\"http://www.w3.org/1998/Math/MathML\" overflow=\"scroll\"> <m:mo>≈</m:mo> <m:mn>1.1</m:mn> </m:math> <jats:tex-math>${\\approx} 1.1$</jats:tex-math> <jats:inline-graphic xmlns:xlink=\"http://www.w3.org/1999/xlink\" xlink:href=\"graphic/j_nanoph-2024-0485_ineq_002.png\"/> </jats:alternatives> </jats:inline-formula>. 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引用次数: 0
摘要
最近,硅色彩中心作为单光子源和自旋量子比特-光子接口备受关注。然而,硅色彩中心应用的主要瓶颈之一是其整体亮度较低,这是由于硅的发射速度相对较慢且光提取能力较差。在这里,我们通过将 W 中心嵌入与其零声子线发射共振的环形布拉格光栅空腔,提高了特定种类颜色中心(称为 W 中心)的光子收集效率。我们观察到光子收集效率(从样品中提取并耦合到单模光纤中的光子分数)提高了≈5 倍,而光子提取效率(样品上方第一个透镜收集的光子分数)估计提高了≈11 倍。对于这些空腔,我们观察到其寿命降低了 ≈ 1.3 ${\approx} 1.3$。对于共振弓形空腔中的 W 中心,我们观察到光子收集效率提高了≈3 倍,相当于光子提取效率提高了≈6 倍,并观察到寿命缩短系数≈1.1 ${\approx} 1.1$。因此,弓形腔能保持与圆形腔相当的光子收集效率和珀塞尔增强效应,同时为利用面内激发方法开发紧凑型片上光源提供了可能。
Enhanced zero-phonon line emission from an ensemble of W centers in circular and bowtie Bragg grating cavities
Color centers in silicon have recently gained considerable attention as single-photon sources and as spin qubit-photon interfaces. However, one of the major bottlenecks to the application of silicon color centers is their low overall brightness due to a relatively slow emission rate and poor light extraction from silicon. Here, we increase the photon collection efficiency from an ensemble of a particular kind of color center, known as W centers, by embedding them in circular Bragg grating cavities resonant with their zero-phonon-line emission. We observe a ≈5-fold enhancement in the photon collection efficiency (the fraction of photons extracted from the sample and coupled into a single-mode fiber), corresponding to an estimated ≈11-fold enhancement in the photon extraction efficiency (the fraction of photons collected by the first lens above the sample). For these cavities, we observe lifetime reduction by a factor of ≈1.3${\approx} 1.3$. For W centers in resonant bowtie-shaped cavities, we observed a ≈3-fold enhancement in the photon collection efficiency, corresponding to a ≈6-fold enhancement in the photon extraction efficiency, and observed a lifetime reduction factor of ≈1.1${\approx} 1.1$. The bowtie cavities thus preserve photon collection efficiency and Purcell enhancement comparable to circular cavities while providing the potential for utilizing in-plane excitation methods to develop a compact on-chip light source.
期刊介绍:
Nanophotonics, published in collaboration with Sciencewise, is a prestigious journal that showcases recent international research results, notable advancements in the field, and innovative applications. It is regarded as one of the leading publications in the realm of nanophotonics and encompasses a range of article types including research articles, selectively invited reviews, letters, and perspectives.
The journal specifically delves into the study of photon interaction with nano-structures, such as carbon nano-tubes, nano metal particles, nano crystals, semiconductor nano dots, photonic crystals, tissue, and DNA. It offers comprehensive coverage of the most up-to-date discoveries, making it an essential resource for physicists, engineers, and material scientists.