Di Giulio Giuseppe, Turkeshi Xhek, Murciano Sara
Oscar Klein Centre and Department of Physics, Stockholm University, AlbaNova, 106 91 Stockholm, Sweden.
Institut für Theoretische Physik, Universität zu Köln, Zülpicher Strasse 77a, 50937 Cologne, Germany.
Entropy (Basel). 2025 Apr 10;27(4):407. doi: 10.3390/e27040407.
Monitoring a quantum system can profoundly alter its dynamical properties, leading to non-trivial emergent phenomena. In this work, we demonstrate that dynamical measurements strongly influence the evolution of symmetry in many-body quantum systems. Specifically, we demonstrate that monitored systems governed by non-Hermitian dynamics exhibit a quantum Mpemba effect, where systems with stronger initial asymmetry relax faster to a symmetric state. Crucially, this phenomenon is purely measurement-induced: in the absence of measurements, we find states where the corresponding unitary evolution does not display any Mpemba effect. Furthermore, we uncover a novel measurement-induced symmetry restoration mechanism: below a critical measurement rate, the symmetry remains broken, but beyond a threshold, it is fully restored in the thermodynamic limit-along with the emergence of the quantum Mpemba effect.
监测一个量子系统会深刻改变其动力学性质,从而导致非平凡的涌现现象。在这项工作中,我们证明动力学测量会强烈影响多体量子系统中对称性的演化。具体而言,我们证明由非厄米动力学支配的受监测系统表现出量子姆潘巴效应,即初始不对称性更强的系统更快弛豫到对称状态。至关重要的是,这种现象纯粹是由测量引起的:在没有测量的情况下,我们发现相应的幺正演化不会显示任何姆潘巴效应的状态。此外,我们发现了一种新的测量诱导对称性恢复机制:在低于临界测量速率时,对称性仍然被破坏,但超过一个阈值后,在热力学极限下它会完全恢复——同时伴随着量子姆潘巴效应的出现。