论文标题
多核自旋登记册中纠缠的精确控制与缺陷耦合
Precise control of entanglement in multinuclear spin registers coupled to defects
论文作者
论文摘要
量子网络在量子信息任务中起着必不可少的作用,例如安全通信,增强的量子传感和分布式计算。在量子网络的最成熟和有前途的平台中,有钻石和其他颜色中心的氮呈现中心。尽管超精细相互作用的性质始终是固有的,但使用这些系统进行网络应用程序的挑战之一是可以控制电子和核自旋寄存器之间的纠缠,这使得这是固有的多体量子系统。在这里,我们开发了一种一般形式主义,以量化和控制任意大型核自旋寄存器的纠缠产生,并耦合到颜色中心电子自旋。我们通过将不需要的核精确地纳入我们的治疗动力学,从而提供可靠的核自旋选择性度量。我们还展示了如何通过使用动力学去耦序列来实现直接的多方门,与基于与单个核自旋的顺序纠缠相比,与协议相比,总栅极时间大大减少了总栅极时间。我们在存在不必要的残留纠缠链路的情况下量化了此类门操作的性能,从而捕获了整个核自旋寄存器的动力学。最后,使用特征良好的27个核自旋寄存器设备的实验参数,我们展示了如何使用高富达纠缠状态进行量子误差校正。
Quantum networks play an indispensable role in quantum information tasks such as secure communications, enhanced quantum sensing, and distributed computing. Among the most mature and promising platforms for quantum networking are nitrogen-vacancy centers in diamond and other color centers in solids. One of the challenges in using these systems for networking applications is to controllably manipulate entanglement between the electron and the nuclear spin register despite the always-on nature of the hyperfine interactions, which makes this an inherently many-body quantum system. Here, we develop a general formalism to quantify and control the generation of entanglement in an arbitrarily large nuclear spin register coupled to a color center electronic spin. We provide a reliable measure of nuclear spin selectivity, by exactly incorporating into our treatment the dynamics with unwanted nuclei. We also show how to realize direct multipartite gates through the use of dynamical decoupling sequences, drastically reducing the total gate time compared to protocols based on sequential entanglement with individual nuclear spins. We quantify the performance of such gate operations in the presence of unwanted residual entanglement links, capturing the dynamics of the entire nuclear spin register. Finally, using experimental parameters of a well-characterized 27 nuclear spin register device, we show how to prepare with high fidelity entangled states for quantum error correction.