{"title":"耗散系统中的纠缠多子、不对称和量子姆彭巴效应","authors":"Fabio Caceffo, Sara Murciano, Vincenzo Alba","doi":"10.1088/1742-5468/ad4537","DOIUrl":null,"url":null,"abstract":"Recently, the entanglement asymmetry emerged as an informative tool to understand dynamical symmetry restoration in out-of-equilibrium quantum many-body systems after a quantum quench. For integrable systems the asymmetry can be understood in the space-time scaling limit via the quasiparticle picture, as it was pointed out in Ares <italic toggle=\"yes\">et al</italic> (2023 <italic toggle=\"yes\">Nat. Commun.</italic>\n<bold>14</bold> 2036) . However, a quasiparticle picture for quantum quenches from generic initial states was still lacking. Here we conjecture a full-fledged quasiparticle picture for the charged moments of the reduced density matrix, which are the main ingredients to construct the asymmetry. Our formula works for quenches producing entangled multiplets of an arbitrary number of excitations. We benchmark our results in the <italic toggle=\"yes\">XX</italic> spin chain. First, by using an elementary approach based on the multidimensional stationary phase approximation we provide an <italic toggle=\"yes\">ab initio</italic> rigorous derivation of the dynamics of the charged moments for the quench treated in Ares <italic toggle=\"yes\">et al</italic> (2023 <italic toggle=\"yes\">SciPost Phys.</italic>\n<bold>15</bold> 089). Then, we show that the same results can be straightforwardly obtained within our quasiparticle picture. As a byproduct of our analysis, we obtain a general criterion ensuring a vanishing entanglement asymmetry at long times. Next, by using the Lindblad master equation, we study the effect of gain and loss dissipation on the entanglement asymmetry. Specifically, we investigate the fate of the so-called quantum Mpemba effect (QME) in the presence of dissipation. We show that dissipation can induce QME even if unitary dynamics does not show it, and we provide a quasiparticle-based interpretation of the condition for the QME.","PeriodicalId":17207,"journal":{"name":"Journal of Statistical Mechanics: Theory and Experiment","volume":"1 1","pages":""},"PeriodicalIF":2.2000,"publicationDate":"2024-06-10","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Entangled multiplets, asymmetry, and quantum Mpemba effect in dissipative systems\",\"authors\":\"Fabio Caceffo, Sara Murciano, Vincenzo Alba\",\"doi\":\"10.1088/1742-5468/ad4537\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Recently, the entanglement asymmetry emerged as an informative tool to understand dynamical symmetry restoration in out-of-equilibrium quantum many-body systems after a quantum quench. 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引用次数: 0
摘要
最近,纠缠不对称性成为理解量子淬火后失衡量子多体系统动态对称性恢复的一种信息工具。对于可积分系统,正如阿瑞斯等人(2023 Nat.然而,从一般初始态出发的量子淬灭仍然缺乏准粒子图景。在这里,我们为还原密度矩阵的带电矩猜想了一个完整的类粒子图景,它们是构建不对称的主要成分。我们的公式适用于产生任意数量激元纠缠多子的淬火。我们在 XX 自旋链中对我们的结果进行了基准测试。首先,通过使用基于多维静止相近似的基本方法,我们对阿瑞斯等人(2023 SciPost Phys.15.089)所处理的淬火的带电矩动力学进行了严格的ab initio推导。然后,我们证明在我们的准粒子图中可以直接得到相同的结果。作为我们分析的副产品,我们得到了一个通用标准,确保纠缠不对称在长时间内消失。接下来,我们利用林德布拉德主方程,研究增益和损耗耗散对纠缠不对称性的影响。具体来说,我们研究了存在耗散时所谓量子姆彭巴效应(QME)的命运。我们证明,即使单元动力学没有显示出耗散,耗散也能诱发 QME,并对 QME 的条件提供了基于准粒子的解释。
Entangled multiplets, asymmetry, and quantum Mpemba effect in dissipative systems
Recently, the entanglement asymmetry emerged as an informative tool to understand dynamical symmetry restoration in out-of-equilibrium quantum many-body systems after a quantum quench. For integrable systems the asymmetry can be understood in the space-time scaling limit via the quasiparticle picture, as it was pointed out in Ares et al (2023 Nat. Commun.14 2036) . However, a quasiparticle picture for quantum quenches from generic initial states was still lacking. Here we conjecture a full-fledged quasiparticle picture for the charged moments of the reduced density matrix, which are the main ingredients to construct the asymmetry. Our formula works for quenches producing entangled multiplets of an arbitrary number of excitations. We benchmark our results in the XX spin chain. First, by using an elementary approach based on the multidimensional stationary phase approximation we provide an ab initio rigorous derivation of the dynamics of the charged moments for the quench treated in Ares et al (2023 SciPost Phys.15 089). Then, we show that the same results can be straightforwardly obtained within our quasiparticle picture. As a byproduct of our analysis, we obtain a general criterion ensuring a vanishing entanglement asymmetry at long times. Next, by using the Lindblad master equation, we study the effect of gain and loss dissipation on the entanglement asymmetry. Specifically, we investigate the fate of the so-called quantum Mpemba effect (QME) in the presence of dissipation. We show that dissipation can induce QME even if unitary dynamics does not show it, and we provide a quasiparticle-based interpretation of the condition for the QME.
期刊介绍:
JSTAT is targeted to a broad community interested in different aspects of statistical physics, which are roughly defined by the fields represented in the conferences called ''Statistical Physics''. Submissions from experimentalists working on all the topics which have some ''connection to statistical physics are also strongly encouraged.
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1. Quantum statistical physics, condensed matter, integrable systems
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3. Disordered systems, classical and quantum
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