Long-Time Relaxation of a Finite Spin Bath Linearly Coupled to a Qubit

IF 1.3 4区 物理与天体物理 Q3 PHYSICS, MATHEMATICAL Open Systems & Information Dynamics Pub Date : 2023-05-15 DOI:10.1142/S1230161223500099
J. Pekola, B. Karimi, M. Cattaneo, S. Maniscalco
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引用次数: 2

Abstract

We discuss the long-time relaxation of a qubit linearly coupled to a finite bath of [Formula: see text] spins (two-level systems, TLSs), with the interaction Hamiltonian in rotating wave approximation. We focus on the regime [Formula: see text], assuming that the qubit–bath coupling is weak, that the range of spin frequencies is sufficiently broad, and that all the spins are initialized in the ground state. Despite the model being perfectly integrable, we make two interesting observations about the effective system relaxation. First, as one would expect, the qubit relaxes exponentially towards its zero-temperature state at a well characterized rate. Second, the bath spins, even when mutually coupled, do not relax towards a thermal distribution, but rather form a Lorentzian distribution peaked at the frequency of the initially excited qubit. This behaviour is captured by an analytical approximation that makes use of the property [Formula: see text] to treat the TLS frequencies as a continuum and is confirmed by our numerical simulations.
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与量子位线性耦合的有限自旋槽的长时间弛豫
我们讨论了一个量子比特与有限自旋(两能级系统,TLSs)线性耦合的长时间弛豫,以及旋转波近似中的相互作用哈密顿量。假设量子比特-浴体耦合很弱,自旋频率的范围足够宽,并且所有的自旋都在基态初始化,我们关注的是这个状态[公式:见文本]。尽管模型是完全可积的,但我们对系统的有效松弛作了两个有趣的观察。首先,正如人们所期望的那样,量子比特以一种良好表征的速率呈指数级弛豫到零温度状态。其次,即使相互耦合,槽自旋也不会向热分布放松,而是在初始激发量子位的频率处形成洛伦兹分布。这种行为是通过解析近似捕获的,该近似利用属性[公式:见文本]将TLS频率视为连续体,并通过我们的数值模拟得到证实。
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来源期刊
Open Systems & Information Dynamics
Open Systems & Information Dynamics 工程技术-计算机:信息系统
CiteScore
1.40
自引率
12.50%
发文量
4
审稿时长
>12 weeks
期刊介绍: The aim of the Journal is to promote interdisciplinary research in mathematics, physics, engineering and life sciences centered around the issues of broadly understood information processing, storage and transmission, in both quantum and classical settings. Our special interest lies in the information-theoretic approach to phenomena dealing with dynamics and thermodynamics, control, communication, filtering, memory and cooperative behaviour, etc., in open complex systems.
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