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纳米金刚石波导作为一个坚固的明亮平台,用于使用浅层氮空位中心的纳米磁力计。

Nanoengineered diamond waveguide as a robust bright platform for nanomagnetometry using shallow nitrogen vacancy centers.

机构信息

3. Institute of Physics, Research Center SCoPE and IQST, University of Stuttgart , 70569 Stuttgart, Germany.

出版信息

Nano Lett. 2015 Jan 14;15(1):165-9. doi: 10.1021/nl503326t. Epub 2014 Dec 8.

Abstract

Photonic structures in diamond are key to most of its application in quantum technology. Here, we demonstrate tapered nanowaveguides structured directly onto the diamond substrate hosting shallow-implanted nitrogen vacancy (NV) centers. By optimization based on simulations and precise experimental control of the geometry of these pillar-shaped nanowaveguides, we achieve a net photon flux up to ∼ 1.7 × 10(6) s(-1). This presents the brightest monolithic bulk diamond structure based on single NV centers so far. We observe no impact on excited state lifetime and electronic spin dephasing time (T2) due to the nanofabrication process. Possessing such high brightness with low background in addition to preserved spin quality, this geometry can improve the current nanomagnetometry sensitivity ∼ 5 times. In addition, it facilitates a wide range of diamond defects-based magnetometry applications. As a demonstration, we measure the temperature dependency of T1 relaxation time of a single shallow NV center electronic spin. We observe the two-phonon Raman process to be negligible in comparison to the dominant two-phonon Orbach process.

摘要

金刚石中的光子结构是其在量子技术中大多数应用的关键。在这里,我们展示了直接在承载浅埋氮空位 (NV) 中心的金刚石衬底上构造的锥形纳米波导。通过基于模拟的优化和对这些柱状纳米波导几何形状的精确实验控制,我们实现了高达约 1.7×10(6) s(-1)的净光子通量。这是迄今为止基于单个 NV 中心的最亮的整体块状金刚石结构。我们观察到由于纳米制造过程,激发态寿命和电子自旋退相时间 (T2) 没有受到影响。这种结构具有高亮度、低背景,并且保持了自旋质量,可将当前的纳米磁强计灵敏度提高约 5 倍。此外,它还促进了各种基于金刚石缺陷的磁强计应用。作为一个演示,我们测量了单个浅 NV 中心电子自旋的 T1 弛豫时间随温度的依赖性。我们观察到双声子 Raman 过程与占主导地位的双声子 Orbach 过程相比可以忽略不计。

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