论文标题
量子磁力力学超导微型环的悬浮
Levitation of superconducting micro-rings for quantum magnetomechanics
论文作者
论文摘要
超导体的悬浮正在成为量子技术的重要组成部分,尤其是在磁力力学的上升领域。在大多数理论建议和实验中,考虑悬浮剂等实体几何形状(例如球)。在这里,我们证明,通过超导环取代它们带来了两个重要优势:首先,作用在环上的力仍然与固体物体期望的力相当,而超导体的质量大大减少了。反过来,这种减少增加了可实现的陷阱频率。其次,被视场冷却捕获在环中的通量会为系统提供额外的控制程度。我们构建了一个一般的理论框架,在该框架中,我们可以在抗螺旋荷兰兹四极场和偶极场中获得超导环悬浮的分析表,用于零场和场内冷却。分析悬浮环的位置和捕获频率是系统参数和在冷却过程中施加的场的函数的函数。与散装超导体中通常观察到的不同,对于这种理想化的几何形状,侧向稳定性和旋转稳定性未授予。因此,我们讨论了简单的超导结构的要求,以在所有自由度上实现稳定性。
Levitation of superconductors is becoming an important building block in quantum technologies, particularly in the rising field of magnetomechanics. In most of the theoretical proposals and experiments, solid geometries such as spheres are considered for the levitator. Here we demonstrate that replacing them by superconducting rings brings two important advantages: Firstly, the forces acting on the ring remain comparable to those expected for solid objects, while the mass of the superconductor is greatly reduced. In turn, this reduction increases the achievable trap frequency. Secondly, the flux trapped in the ring by in-field cooling yields an additional degree of control for the system. We construct a general theoretical framework with which we obtain analytical formulations for a superconducting ring levitating in an anti-Helmholtz quadrupole field and a dipole field, for both zero-field and in-field cooling. The positions and the trapping frequencies of the levitated rings are analytically found as a function of the parameters of the system and the field applied during the cooling process. Unlike what is commonly observed in bulk superconductors, lateral and rotational stability are not granted for this idealized geometry. We therefore discuss the requirements for simple superconducting structures to achieve stability in all degrees of freedom.