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在内窥镜型配置中,通过锥形光纤从微米级金刚石高效激发和收集氮空位中心的荧光。

Efficient nitrogen-vacancy centers' fluorescence excitation and collection from micrometer-sized diamond by a tapered optical fiber in endoscope-type configuration.

作者信息

Duan D, Du G X, Kavatamane V K, Arumugam S, Tzeng Y-K, Chang H-C, Balasubramanian G

出版信息

Opt Express. 2019 Mar 4;27(5):6734-6745. doi: 10.1364/OE.27.006734.

Abstract

Using an optical fiber to both excite the nitrogen-vacancy (NV) center in diamond and collect its fluorescence is essential to build NV-based endoscope-type sensor. Such endoscope-type sensor can reach inaccessible fields for traditional NV-based sensors built by bulky optical components and extend the application areas. Since single NV's fluorescence is weak and can easily be buried in fluorescence from optical fiber core's oxide defects excited by the green laser, fixing a micrometer size diamond containing high-density NVs rather than a nanodiamond containing single NV or several NVs on the apex of an optical fiber to build an endoscope-type sensor is more implementable. Unfortunately, due to small numerical aperture (NA), most of the optical fibers have a low fluorescence collection efficiency, which limits the sensitivity and spatial resolution of the NV-based endoscope-type sensor. Here, using a tapered optical fiber (TOF) tip, we significantly improve the efficiency of the laser excitation and fluorescence collection of the NV ensembles in diamond. This could potentially enhance the sensitivity and spatial resolution of the NV-based endoscope-type sensor. Numerical calculations show that the TOF tip delivers a high NA and has a high NV excitation and fluorescence collection efficiency. Experiments demonstrate that such TOF tip can obtain up to over 7-fold excitation efficiency and over 15-fold fluorescence collection efficiency of that from a flat-ended fiber (non-TOF) tip.

摘要

使用光纤既激发金刚石中的氮空位(NV)中心又收集其荧光对于构建基于NV的内窥镜型传感器至关重要。这种内窥镜型传感器可以到达由大型光学元件构建的传统基于NV的传感器无法到达的区域,并扩展应用领域。由于单个NV的荧光较弱,很容易被绿色激光激发的光纤芯氧化物缺陷发出的荧光所掩盖,因此在光纤顶端固定一个含有高密度NV的微米尺寸金刚石,而不是含有单个NV或几个NV的纳米金刚石来构建内窥镜型传感器更具可行性。不幸的是,由于数值孔径(NA)小,大多数光纤的荧光收集效率较低,这限制了基于NV的内窥镜型传感器的灵敏度和空间分辨率。在此,我们使用锥形光纤(TOF)尖端,显著提高了金刚石中NV集合体的激光激发效率和荧光收集效率。这有可能提高基于NV的内窥镜型传感器的灵敏度和空间分辨率。数值计算表明,TOF尖端具有高NA,并且具有高NV激发和荧光收集效率。实验表明,这种TOF尖端的激发效率比平端光纤(非TOF)尖端高7倍以上,荧光收集效率高15倍以上。

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