论文标题

光纤尖端内窥镜光学和微波控制

Fiber-tip endoscope for optical and microwave control

论文作者

Dix, Stefan, Gutsche, Jonas, Waller, Erik, von Freymann, Georg, Widera, Artur

论文摘要

我们提出了一个基于稳健的,基于光纤的内窥镜,其射频发射(RF)发射的银色直线射击(DLW)结构旁边是光纤置板旁边的。因此,我们能够激发和探测样品,例如钻石中的氮空位(NV)中心,带有RF和光学信号同时,专门测量样品通过纤维的荧光。在2.9 GHz左右的目标频率范围内,光纤核的方面位于RF引导银结构的近场中,这具有最佳的RF强度随距离迅速降低的优势。通过在光纤的覆层上创建银结构,我们在光学激发和检测到的样品与天线结构之间达到了最小的可能距离,而不会影响纤维的光学性能。这使我们在考虑具有集成光学和RF访问的内窥镜解决方案时,在样本的位置实现了高RF振幅。内窥镜的能力通过光学检测到的磁共振(ODMR)测量对NV掺杂的微氨基氨基调的测量进行量化,我们将其探测为实际用例。我们证明了我们的17.8 nt/$ \ sqrt {\ mathrm {hz}} $的设备的磁敏感性,每次通过我们的光纤测量ODMR时,并使用共聚焦显微镜比较对测量的灵敏度。此外,这种内窥镜可以用作测量各种荧光颗粒的强大工具,否则这些荧光颗粒只能通过笨重和大的光学设置来测量。此外,我们的内窥镜指向基于拉皮振荡的精确距离测量。

We present a robust, fiber based endoscope with a silver direct-laser-written (DLW) structure for radio frequency (RF) emission next to the optical fiber facet. Thereby, we are able to excite and probe a sample, such as nitrogen vacancy (NV) centers in diamond, with RF and optical signals simultaneously and specifically measure the fluorescence of the sample fully through the fiber. At our targeted frequency-range around 2.9 GHz the facet of the fiber-core is in the near-field of the RF-guiding silver-structure, which comes with the advantage of an optimal RF-intensity decreasing rapidly with the distance. By creating a silver structure on the cladding of the optical fiber we achieve the minimal possible distance between an optically excited and detected sample and an antenna structure without affecting the optical performance of the fiber. This allows us realizing a high RF-amplitude at the sample's position when considering an endoscope solution with integrated optical and RF access. The capabilities of the endoscope are quantified by optically detected magnetic resonance (ODMR) measurements of a NV-doped microdiamond that we probe as a practical use case. We demonstrate a magnetic sensitivity of our device of 17.8 nT/$\sqrt{\mathrm{Hz}}$ per when measuring the ODMR exclusively through our fiber and compare the sensitivity to a measurement using a confocal microscope. Moreover, such an endoscope could be used as a powerful tool for measuring a variety of fluorescent particles that can otherwise only be measured with bulky and large optical setups. Furthermore, our endoscope points toward precise distance measurements based on Rabi oscillations.

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