论文标题
可靠的量子控制固态旋转
Robust quantum control for the manipulation of solid-state spins
论文作者
论文摘要
固体中电子旋转的强大和高保真控制是促进固态旋转在量子信息处理和量子传感中的应用的基石。但是,由于存在来自环境和控制场的各种噪声,因此对旋转系统的精确控制总是具有挑战性的。在本文中,通过钻石中的氮呈(NV)中心在实验上证明了使用可靠的最佳控制(ROC)算法设计的噪声量子门,以同时实现量身定制的鲁棒性和RABI错误。在狂犬病频率的10%抗谐声失谐和偏差的情况下,我们达到了平均单Qubit Gate Fidelity,高达99.97%。我们的实验还表明,基于ROCB的多体量子传感序列可以抑制微波脉冲的有限宽度和缺陷导致的虚假响应,这为增强现有多元量子量子传感序列的性能提供了有效的策略。
Robust and high-fidelity control of electron spins in solids is the cornerstone for facilitating applications of solid-state spins in quantum information processing and quantum sensing. However, precise control of spin systems is always challenging due to the presence of a variety of noises originating from the environment and control fields. Herein, noise-resilient quantum gates, designed with robust optimal control (ROC) algorithms, are demonstrated experimentally with nitrogen-vacancy (NV) centers in diamond to realize tailored robustness against detunings and Rabi errors simultaneously. In the presence of both 10% off-resonant detuning and deviation of a Rabi frequency, we achieve an average single-qubit gate fidelity of up to 99.97%. Our experiments also show that, ROCbased multipulse quantum sensing sequences can suppress spurious responses resulting from finite widths and imperfections of microwave pulses, which provides an efficient strategy for enhancing the performance of existing multipulse quantum sensing sequences.