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APS -APS March Meeting 2017 - Event - Electron spin control and torsional optomechanics of an optically levitated nanodiamond in vacuum

机译:APS -APS 3月举行2017年 - Event - 电子旋转控制和真空光悬浮纳米胺的扭转光学力学

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Electron spins of diamond nitrogen-vacancy (NV) centers are important quantum resources for nanoscale sensing and quantum information. Combining such NV spin systems with levitated optomechanical resonators will provide a hybrid quantum system for many novel applications. Here we optically levitate a nanodiamond and demonstrate electron spin control of its built-in NV centers in vacuum. We observe that the strength of electron spin resonance (ESR) is enhanced when the air pressure is reduced. We also observe that oxygen and helium gases have different effects on both the photoluminescence and the ESR contrast of nanodiamond NV centers, indicating potential applications of NV centers in oxygen gas sensing. For spin-optomechanics, it is important to control the orientation of the nanodiamond and NV centers in a magnetic field. Recently, we have observed the angular trapping and torsional vibration of a levitated nanodiamond, which paves the way towards levitated torsional optomechanics in the quantum regime.
机译:金刚石空位(NV)中心的电子旋转是纳米级传感和量子信息的重要量子资源。将这种NV旋转系统与悬浮光机械谐振器相结合,将为许多新颖应用提供混合量子系统。在这里,我们光学浮动纳米金刚胺,并在真空中展示其内置NV中心的电子旋转控制。我们观察到,当减少空气压力时,电子自旋共振(ESR)的强度增强。我们还观察到氧气和氦气对纳米胺NV中心的光致发光和ESR对比产生不同的影响,表明NV中心在氧气感测中的潜在应用。对于自旋 - 光学力学,重要的是控制磁场中纳米胺和NV中心的方向。最近,我们已经观察到悬浮的纳米金刚石的角度捕获和扭转振动,这为量子制度铺平了浮动扭转光学力学的方式。

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