论文标题
动态极化的快捷方式
Shortcuts to Dynamic Polarization
论文作者
论文摘要
动态极化方案的目的是通过从量子点或颜色缺陷等良好控制的量子量量子(例如量子)转移自旋极化来超极化。我们以从快捷方式到绝热性的技术为基础,在中央自旋模型中设计快速有效的动态极化方案,适用于偶性相互作用系统。协议最大程度地通过附近的集成点通过明亮状态传递了极化,从而利用了可集成性的术语,以减少不传递极化的黑暗状态的统计重量,并实现通过Floquet-Deargeering实验可访问的局部局部反浸润驱动。主方程处理表明,协议持续时间与带有预成分的浴缸的数量线性缩放,该旋转的数量级可能比未辅助方案小的数量级。这项工作开辟了新的途径,以冷却自旋浴并延长量子相干时间,以在量子信息处理和计量学中应用。
Dynamic polarization protocols aim to hyperpolarize a spin bath by transferring spin polarization from a well-controlled qubit such as a quantum dot or a color defect. Building on techniques from shortcuts to adiabaticity, we design fast and efficient dynamic polarization protocols in central spin models that apply to dipolarly interacting systems. The protocols maximize the transfer of polarization via bright states at a nearby integrable point, exploit the integrability-breaking terms to reduce the statistical weight on dark states that do not transfer polarization, and realize experimentally accessible local counterdiabatic driving through Floquet-engineering. A master equation treatment suggests that the protocol duration scales linearly with the number of bath spins with a prefactor that can be orders of magnitude smaller than that of unassisted protocols. This work opens new pathways to cool spin baths and extend qubit coherence times for applications in quantum information processing and metrology.