Yin Ruoyu, Wang Qingyuan, Tornow Sabine, Barkai Eli
Department of Physics, Institute of Nanotechnology and Advanced Materials, Bar-Ilan University, Ramat-Gan 52900, Israel.
Department of Computer Science, Research Institute CODE (Cyber Defence), University of the Bundeswehr Munich, Munich 81739, Germany.
Proc Natl Acad Sci U S A. 2025 Jan 7;122(1):e2402912121. doi: 10.1073/pnas.2402912121. Epub 2025 Jan 2.
We introduce a time-energy uncertainty relation within the context of restarts in monitored quantum dynamics. Previous studies have established that the mean recurrence time, which represents the time taken to return to the initial state, is quantized as an integer multiple of the sampling time, displaying pointwise discontinuous transitions at resonances. Our findings demonstrate that the natural utilization of the restart mechanism in laboratory experiments, driven by finite data collection time spans, leads to a broadening effect on the transitions of the mean recurrence time. Our proposed uncertainty relation captures the underlying essence of these phenomena, by connecting the broadening of the mean hitting time near resonances, to the intrinsic energies of the quantum system and to the fluctuations of recurrence time. Our uncertainty relation has also been validated through remote experiments conducted on an International Business Machines Corporation (IBM) quantum computer. This work not only contributes to our understanding of fundamental aspects related to quantum measurements and dynamics, but also offers practical insights for the design of efficient quantum algorithms with mid-circuit measurements.
我们在受监测量子动力学中的重启背景下引入了一个时间 - 能量不确定性关系。先前的研究已经确定,平均回归时间(即回到初始状态所需的时间)被量化为采样时间的整数倍,在共振处显示出逐点不连续的跃迁。我们的研究结果表明,在实验室实验中,由有限的数据收集时间跨度驱动的重启机制的自然利用,会导致平均回归时间跃迁的展宽效应。我们提出的不确定性关系通过将共振附近平均到达时间的展宽与量子系统的本征能量以及回归时间的涨落联系起来,捕捉了这些现象的内在本质。我们的不确定性关系也通过在国际商业机器公司(IBM)量子计算机上进行的远程实验得到了验证。这项工作不仅有助于我们理解与量子测量和动力学相关的基本方面,还为具有中途测量的高效量子算法的设计提供了实际见解。