Rusconi Cosimo C, Perdriat Maxime, Hétet Gabriel, Romero-Isart Oriol, Stickler Benjamin A
Max-Planck-Institut für Quantenoptik, Hans-Kopfermann-Strasse 1, 85748 Garching, Germany.
Munich Center for Quantum Science and Technology, Schellingstrasse 4, D-80799 München, Germany.
Phys Rev Lett. 2022 Aug 26;129(9):093605. doi: 10.1103/PhysRevLett.129.093605.
We describe how to prepare an electrically levitated nanodiamond in a superposition of orientations via microwave driving of a single embedded nitrogen-vacancy (NV) center. Suitably aligning the magnetic field with the NV center can serve to reach the regime of ultrastrong coupling between the NV and the diamond rotation, enabling single-spin control of the particle's three-dimensional orientation. We derive the effective spin-oscillator Hamiltonian for small amplitude rotation about the equilibrium configuration and develop a protocol to create and observe quantum superpositions of the particle orientation. We discuss the impact of decoherence and argue that our proposal can be realistically implemented with near-future technology.
我们描述了如何通过对单个嵌入的氮空位(NV)中心进行微波驱动,来制备处于取向叠加态的电悬浮纳米金刚石。将磁场与NV中心进行适当对齐,可达到NV与金刚石旋转之间的超强耦合状态,从而实现对粒子三维取向的单自旋控制。我们推导了围绕平衡构型进行小幅度旋转的有效自旋 - 振荡器哈密顿量,并制定了一个方案来创建和观测粒子取向的量子叠加态。我们讨论了退相干的影响,并认为我们的提议可以用近期技术切实可行地实现。