Longhi Stefano
Dipartimento di Fisica, Politecnico di Milano, Piazza L. da Vinci 32, I-20133 Milano, Italy.
IFISC (UIB-CSIC), Instituto de Fisica Interdisciplinar y Sistemas Complejos, E-07122 Palma de Mallorca, Spain.
Entropy (Basel). 2025 May 29;27(6):581. doi: 10.3390/e27060581.
The quantum Mpemba effect refers to the counterintuitive phenomenon in which a system initially farther from equilibrium relaxes faster than one prepared closer to it. Several mechanisms have been identified in open quantum systems to explain this behavior, including the strong Mpemba effect, non-Markovian memory, and initial system-reservoir entanglement. Here, we unveil a distinct mechanism rooted in the non-normal nature of the Liouvillian superoperator in Markovian dynamics. When the Liouvillian's eigenmodes are non-orthogonal, transient interference between decaying modes can induce anomalous early-time behavior-such as delayed thermalization or transient freezing-even though asymptotic decay rates remain unchanged. This differs fundamentally from strong Mpemba effects, which hinge on suppressed overlap with slow-decaying modes. We demonstrate this mechanism using a waveguide quantum electrodynamics model, where quantum emitters interact with the photonic modes of a one-dimensional waveguide. The directional and radiative nature of these couplings naturally introduces non-normality into the system's dynamics. As a result, certain initial states-despite being closer to equilibrium-can exhibit slower relaxation at short times. This work reveals a previously unexplored and universal source of Mpemba-like behavior in memoryless quantum systems, expanding the theoretical framework for anomalous relaxation and opening new avenues for control in engineered quantum platforms.
量子姆潘巴效应指的是一种违反直觉的现象,即一个初始时远离平衡态的系统比一个准备得更接近平衡态的系统弛豫得更快。在开放量子系统中已确定了几种机制来解释这种行为,包括强姆潘巴效应、非马尔可夫记忆和初始系统 - 库纠缠。在此,我们揭示了一种源于马尔可夫动力学中刘维尔超算符非正规性质的独特机制。当刘维尔算符的本征模非正交时,衰减模式之间的瞬态干涉可诱发异常的早期行为,如延迟热化或瞬态冻结,尽管渐近衰减率保持不变。这与强姆潘巴效应有根本区别,强姆潘巴效应取决于与慢衰减模式的重叠被抑制。我们使用波导量子电动力学模型演示了这种机制,其中量子发射体与一维波导的光子模式相互作用。这些耦合的方向性和辐射性质自然地将非正规性引入系统动力学。结果,某些初始状态——尽管更接近平衡态——在短时间内可能表现出较慢的弛豫。这项工作揭示了无记忆量子系统中一种此前未被探索的普遍的类似姆潘巴行为的来源,扩展了异常弛豫的理论框架,并为工程量子平台中的控制开辟了新途径。