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Fiber-Coupled Diamond Micro-Waveguides toward an Efficient Quantum Interface for Spin Defect Centers

机译:光纤耦合的金刚石微波导朝向自旋缺陷中心的高效量子接口

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We report the direct integration and efficient coupling of nitrogen vacancy (NV) color centers in diamond nanophotonic structures into a fiber-based photonic architecture at cryogenic temperatures. NV centers are embedded in diamond micro-waveguides (μWGs), which are coupled to fiber tapers. Fiber tapers have low-loss connection to single-mode optical fibers and hence enable efficient integration of NV centers into optical fiber networks. We numerically optimize the parameters of the μWG-fiber-taper devices designed particularly for use in cryogenic experiments, resulting in 35.6% coupling efficiency, and experimentally demonstrate cooling of these devices to the liquid helium temperature of 4.2 K without loss of the fiber transmission. We observe sharp zero-phonon lines in the fluorescence of NV centers through the pigtailed fibers at 100 K. The optimized devices with high photon coupling efficiency and the demonstration of cooling to cryogenic temperatures are an important step to realize fiber-based quantum nanophotonic interfaces using diamond spin defect centers.
机译:我们报告了在低温下,金刚石纳米光子结构中氮空位(NV)色心的直接整合和有效耦合,使其进入基于纤维的光子结构。 NV中心嵌入在与光纤锥度耦合的金刚石微波导(μWG)中。光纤锥与单模光纤具有低损耗连接,因此可以将NV中心有效集成到光纤网络中。我们在数值上优化了专门设计用于低温实验的μWG纤维锥度设备的参数,产生了35.6%的耦合效率,并通过实验证明了将这些设备冷却至4.2 K的液氦温度而不会损失纤维传输。我们在100 K的尾纤上观察到NV中心的荧光中存在清晰的零声子线。具有高光子耦合效率的优化装置以及向低温冷却的演示是实现使用光纤实现基于量子的纳米光子界面的重要步骤金刚石自旋缺陷中心。

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