Quantum reservoir probing of quantum phase transitions

IF 14.7 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Kaito Kobayashi, Yukitoshi Motome
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引用次数: 0

Abstract

Quantum phase transitions are highly remarkable phenomena manifesting in quantum many-body systems. However, their precise identifications in equilibrium systems pose significant theoretical and experimental challenges. Thus far, dynamical detection protocols employing global quantum quenches have been proposed, wherein transitions are discerned via global nonequilibrium excitations. In this work, we demonstrate that quantum phase transitions can be detected through localized out-of-equilibrium excitations induced by local quantum quenches. While the resulting dynamics after the quench is influenced by both the local quench operation and the intrinsic dynamics of the quantum system, the effects of the former are exclusively extracted using the cutting-edge framework called quantum reservoir probing (QRP). Through the QRP, we find that the impacts of the local quenches vary across different quantum phases and are significantly suppressed by quantum fluctuations amplified near quantum critical points; consequently, phase boundaries are precisely delineated. We demonstrate that the QRP can detect quantum phase transitions in the paradigmatic integrable and nonintegrable quantum spin systems, and even topological quantum phase transitions, all within the identical framework employing local quantum quenches and single-site observables.

Abstract Image

量子相变的量子储层探测
量子相变是量子多体系统中非常显著的现象。然而,它们在平衡系统中的精确识别提出了重大的理论和实验挑战。到目前为止,已经提出了采用全局量子猝灭的动态检测协议,其中通过全局非平衡激励来识别跃迁。在这项工作中,我们证明了量子相变可以通过局部量子猝灭引起的局域非平衡激发来检测。猝灭后产生的动力学同时受到局部猝灭操作和量子系统的内在动力学的影响,前者的影响是使用称为量子库探测(QRP)的前沿框架专门提取的。通过QRP,我们发现局部猝灭的影响在不同的量子相上是不同的,并且在量子临界点附近被放大的量子涨落显著地抑制;因此,相界被精确地描绘出来。我们证明了QRP可以检测范式可积和不可积量子自旋系统中的量子相变,甚至拓扑量子相变,所有这些都在使用局部量子淬灭和单点可观测值的相同框架内。
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来源期刊
Nature Communications
Nature Communications Biological Science Disciplines-
CiteScore
24.90
自引率
2.40%
发文量
6928
审稿时长
3.7 months
期刊介绍: Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.
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