Dilute Measurement-Induced Cooling into Many-Body Ground States

Josias Langbehn, Kyrylo Snizhko, Igor Gornyi, Giovanna Morigi, Yuval Gefen, Christiane P. Koch
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Abstract

Cooling a quantum system to its ground state is important for the characterization of nontrivial interacting systems and in the context of a variety of quantum information platforms. It can be achieved by employing measurement-based passive steering protocols, where the steering steps are predetermined and are not based on measurement readouts. However, measurements realized by coupling the system to auxiliary quantum degrees of freedom (“detectors”) are rather costly and protocols in which the number of detectors scales with system size will have limited practical applicability. Here, we identify conditions under which measurement-based cooling protocols can be taken to the ultimate dilute limit where the number of detectors is independent of system size. For two examples of frustration-free one-dimensional spin chains, we show that steering on a single link is sufficient to cool these systems into their unique ground states. We corroborate our analytical arguments with finite-size numerical simulations and discuss further applications of dilute cooling.

Abstract Image

稀释测量引发的冷却进入多体地面状态
将量子系统冷却到其基态对于非微观相互作用系统的表征以及各种量子信息平台都非常重要。它可以通过采用基于测量的被动转向协议来实现,其中转向步骤是预先确定的,而不是基于测量读数。然而,通过将系统与辅助量子自由度("探测器")耦合来实现测量的成本相当高昂,而且探测器数量与系统规模成比例的协议在实际应用中将受到限制。在这里,我们确定了一些条件,在这些条件下,基于测量的冷却协议可以达到最终的稀释极限,即探测器的数量与系统大小无关。对于两个无沮度一维自旋链的例子,我们证明在单链上进行转向足以将这些系统冷却到它们独特的基态。我们用有限尺寸数值模拟证实了我们的分析论证,并讨论了稀释冷却的进一步应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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