Hecht M O, Saurav Kumar, Vlachos Evangelos, Lidar Daniel A, Levenson-Falk Eli M
Center for Quantum Information Science and Technology, University of Southern California, Los Angeles, CA, 90089, USA.
Department of Physics & Astronomy, University of Southern California, Los Angeles, CA, 90089, USA.
Nat Commun. 2025 Apr 29;16(1):3754. doi: 10.1038/s41467-025-58947-4.
Qubit frequency shifts, which often contain information about a target environment variable, are detected with Ramsey interference measurements. Unfortunately, the sensitivity of this protocol is limited by decoherence. We introduce a new protocol to enhance the sensitivity of a qubit frequency measurement in the presence of decoherence by applying a continuous drive to stabilize one component of the Bloch vector. We demonstrate our protocol on a superconducting qubit, enhancing sensitivity per measurement shot by 1.65 × and sensitivity per qubit evolution time by 1.09 × compared to Ramsey. We also explore the protocol theoretically, finding unconditional enhancements compared to Ramsey interferometry and maximum enhancements of 1.96 × and 1.18 × , respectively. Additionally, our protocol is robust to parameter miscalibrations. It requires no feedback and no extra control or measurement resources, and can be immediately applied in a wide variety of quantum computing and quantum sensor technologies.
量子比特频率偏移通常包含有关目标环境变量的信息,可通过拉姆齐干涉测量来检测。不幸的是,该协议的灵敏度受到退相干的限制。我们引入了一种新协议,通过施加连续驱动来稳定布洛赫矢量的一个分量,以提高在存在退相干情况下量子比特频率测量的灵敏度。我们在一个超导量子比特上演示了我们的协议,与拉姆齐方法相比,每次测量的灵敏度提高了1.65倍,每个量子比特演化时间的灵敏度提高了1.09倍。我们还从理论上探索了该协议,发现与拉姆齐干涉测量相比有无条件的增强,最大增强分别为1.96倍和1.18倍。此外,我们的协议对参数校准错误具有鲁棒性。它不需要反馈,也不需要额外的控制或测量资源,并且可以立即应用于各种量子计算和量子传感技术中。