Centre for Engineered Quantum Systems, Department of Physics and Astronomy, Macquarie University, North Ryde, NSW 2109, Australia.
Phys Rev Lett. 2012 Oct 5;109(14):147206. doi: 10.1103/PhysRevLett.109.147206.
Engineering nanomechanical quantum systems possessing ultralong motional coherence times allows for applications in precision quantum sensing and quantum interfaces, but to achieve ultrahigh motional Q one must work hard to remove all forms of motional noise and heating. We examine a magneto-meso-mechanical quantum system that consists of a 3D arrangement of miniature superconducting loops which is stably levitated in a static inhomogeneous magnetic field. The motional decoherence is predominantly due to loss from induced eddy currents in the magnetized sphere which provides the trapping field ultimately yielding Q∼10(9) with motional oscillation frequencies of several hundreds of kilohertz. By inductively coupling this levitating object to a nearby driven flux qubit one can cool its motion very close to the ground state and this may permit the generation of macroscopic entangled motional states of multiple clusters.
工程纳米机械量子系统具有超长的运动相干时间,可应用于精密量子传感和量子接口,但要实现超高运动 Q 值,必须努力消除所有形式的运动噪声和加热。我们研究了一种磁-介-机械量子系统,它由一组微型超导环的 3D 排列组成,这些超导环稳定地悬浮在静态非均匀磁场中。运动退相干主要是由于磁化球体中感应涡流的损失,而磁化球体提供了最终产生 Q∼10(9)的俘获场,运动振荡频率可达几百千赫兹。通过将这个悬浮物体感应耦合到附近的驱动通量量子位上,可以将其运动冷却到非常接近基态,这可能允许生成多个簇的宏观纠缠运动态。