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用于提高金刚石色心光子提取效率的附加氮化镓固体浸没透镜。

Additive GaN Solid Immersion Lenses for Enhanced Photon Extraction Efficiency from Diamond Color Centers.

作者信息

Cheng Xingrui, Wessling Nils Kolja, Ghosh Saptarsi, Kirkpatrick Andrew R, Kappers Menno J, Lekhai Yashna N D, Morley Gavin W, Oliver Rachel A, Smith Jason M, Dawson Martin D, Salter Patrick S, Strain Michael J

机构信息

Department of Engineering Science, University of Oxford, Oxford OX1 3PH, U.K.

Department of Materials, University of Oxford, Oxford OX1 3PJ, U.K.

出版信息

ACS Photonics. 2023 Aug 30;10(9):3374-3383. doi: 10.1021/acsphotonics.3c00854. eCollection 2023 Sep 20.

Abstract

Effective light extraction from optically active solid-state spin centers inside high-index semiconductor host crystals is an important factor in integrating these pseudo-atomic centers in wider quantum systems. Here, we report increased fluorescent light collection efficiency from laser-written nitrogen-vacancy (NV) centers in bulk diamond facilitated by micro-transfer printed GaN solid immersion lenses. Both laser-writing of NV centers and transfer printing of micro-lens structures are compatible with high spatial resolution, enabling deterministic fabrication routes toward future scalable systems development. The micro-lenses are integrated in a noninvasive manner, as they are added on top of the unstructured diamond surface and bonded by van der Waals forces. For emitters at 5 μm depth, we find approximately 2× improvement of fluorescent light collection using an air objective with a numerical aperture of NA = 0.95 in good agreement with simulations. Similarly, the solid immersion lenses strongly enhance light collection when using an objective with NA = 0.5, significantly improving the signal-to-noise ratio of the NV center emission while maintaining the NV's quantum properties after integration.

摘要

从高折射率半导体主体晶体内部的光学活性固态自旋中心有效提取光,是将这些准原子中心集成到更广泛量子系统中的一个重要因素。在此,我们报告了通过微转移印刷的氮化镓固体浸没透镜,提高了块状金刚石中激光写入的氮空位(NV)中心的荧光收集效率。NV中心的激光写入和微透镜结构的转移印刷都与高空间分辨率兼容,为未来可扩展系统的开发提供了确定性的制造路线。微透镜以非侵入性方式集成,因为它们被添加到无结构的金刚石表面顶部,并通过范德华力结合。对于深度为5μm的发射体,我们发现在使用数值孔径NA = 0.95的空气物镜时,荧光收集提高了约2倍,这与模拟结果吻合良好。同样,当使用NA = 0.5的物镜时,固体浸没透镜强烈增强了光收集,显著提高了NV中心发射的信噪比,同时在集成后保持了NV的量子特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e20/10515637/f8f9d994c358/ph3c00854_0002.jpg

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