论文标题
连续跟踪,稳定的大型偶极耦合核自旋轨迹
Continuously tracked, stable, large excursion trajectories of dipolar coupled nuclear spins
论文作者
论文摘要
我们报告了一种实验方法,以激发,稳定和连续跟踪固体中偶极耦合核自旋的Bloch球体轨道。我们在钻石中超极化13C核自旋的模型系统上证明了这些结果。没有量子控制,旋转间耦合会导致T2*= 1.5ms的快速自旋衰减。我们阐明了一种在长达16度的固体角度以超过T2'> 27S的轨迹的方法,即使在存在强旋链间耦合的情况下。这利用了一种新型的自旋驱动策略,该策略将旋转热量为长寿命的偶极多体状态,同时将它们驱动在高度稳定的轨道上。我们表明,可以在Bloch球体上的三个维度上以超过35秒的方式跟踪旋转的运动。在这段时间内,旋转完成> 68,000个封闭的进动轨道,表现出较高的稳定性和鲁棒性,可抵抗错误。我们通过实验探测了这种刚性运动的瞬态方法,从而显示了设计高度稳定的“设计师”自旋轨迹的能力。我们的结果提出了新的方法来通过定期驾驶稳定和询问强耦合的量子系统,并预示着在量子传感中刚性旋转轨道的强大应用。
We report an experimental approach to excite, stabilize, and continuously track Bloch sphere orbits of dipolar-coupled nuclear spins in a solid. We demonstrate these results on a model system of hyperpolarized 13C nuclear spins in diamond. Without quantum control, inter-spin coupling leads to rapid spin decay in T2*=1.5ms. We elucidate a method to preserve trajectories for over T2'>27s at excursion solid angles up to 16 degrees, even in the presence of strong inter-spin coupling. This exploits a novel spin driving strategy that thermalizes the spins to a long-lived dipolar many-body state, while driving them in highly stable orbits. We show that motion of the spins can be quasi-continuously tracked for over 35s in three dimensions on the Bloch sphere. In this time the spins complete >68,000 closed precession orbits, demonstrating high stability and robustness against error. We experimentally probe the transient approach to such rigid motion, and thereby show the ability to engineer highly stable "designer" spin trajectories. Our results suggest new ways to stabilize and interrogate strongly-coupled quantum systems through periodic driving and portend powerful applications of rigid spin orbits in quantum sensing.