论文标题
通过机械旋转控制光子纠缠
Controlling Photon Entanglement with Mechanical Rotation
论文作者
论文摘要
了解弯曲时空中的量子力学是了解时空本身性质的关键垫脚石。尽管已经开发了各种理论模型,但 在弯曲的时空中探测量子力学的实际实验明显更具挑战性。 通过将SAGNAC干涉仪添加到放置在机械旋转平台上的Hong-Ou-Mandel(HOM)干涉仪的臂上,我们表明非惯性运动会修饰纠缠的Biphoton状态的对称性。 随着平台旋转速度的提高,我们观察到HOM干扰倾角转变为HOM干扰峰。这表明光子从完全不可分割的(骨气行为)到完全区分(费米子行为),因此证明了时空如何影响量子系统的机制。随着我们朝着全球卫星量子通信发展,这项工作越来越相关,并为进一步的基础研究铺平了道路,可以测试非惯性运动(以及等效弯曲的时空)对量子纠缠的影响。
Understanding quantum mechanics within curved spacetime is a key stepping stone towards understanding the nature of spacetime itself. Whilst various theoretical models have been developed, it is significantly more challenging to carry out actual experiments that probe quantum mechanics in curved spacetime. By adding Sagnac interferometers into the arms of a Hong-Ou-Mandel (HOM) interferometer that is placed on a mechanically rotating platform, we show that non-inertial motion modifies the symmetry of an entangled biphoton state. As the platform rotation speed is increased, we observe that HOM interference dips transform into HOM interference peaks. This indicates that the photons pass from perfectly indistinguishable (bosonic behaviour), to perfectly distinguishable (fermionic behavior), therefore demonstrating a mechanism for how spacetime can affect quantum systems. The work is increasingly relevant in the real world as we move towards global satellite quantum communications, and paves the way for further fundamental research that could test the influence of non-inertial motion (and equivalently curved spacetime) on quantum entanglement.