利用热资源探索受控马尔可夫量子动力学的极限

IF 1.3 4区 物理与天体物理 Q3 PHYSICS, MATHEMATICAL Open Systems & Information Dynamics Pub Date : 2023-03-01 DOI:10.1142/S1230161223500051
F. V. Ende, Emanuel Malvetti, G. Dirr, T. Schulte-Herbrüggen
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引用次数: 4

摘要

我们的目的是双重的:首先,我们严格地分析热力学过程的量子动力学半群的产生器。我们描述了热运算中量子映射的广义gksl-生成器的特征,并认为(单参数半群)马尔可夫热运算的每一个无穷小生成器都属于这一类。对于单个量子位,我们对它们和它们的非马尔可夫对应物进行了完全的分类和可视化。其次,我们在双线性控制系统的框架中使用这一描述来表征具有可切换耦合到热浴的相干可控量子系统的可达集。核心问题简化为在标准单纯形上研究混合控制系统(“玩具模型”),允许两种类型的进化:(i)瞬时排列和(ii)单参数半群[公式:见文本]-随机映射。我们推广了这个玩具模型的可达集的上界,调用了热化的新结果。利用控制理论的工具,我们充分表征了这些可达集以及稳定状态集,并以qutrit系统的精确结果为例。
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Exploring the Limits of Controlled Markovian Quantum Dynamics with Thermal Resources
Our aim is twofold: First, we rigorously analyse the generators of quantum-dynamical semigroups of thermodynamic processes. We characterise a wide class of gksl-generators for quantum maps within thermal operations and argue that every infinitesimal generator of (a one-parameter semigroup of) Markovian thermal operations belongs to this class. We completely classify and visualise them and their non-Markovian counterparts for the case of a single qubit. Second, we use this description in the framework of bilinear control systems to characterise reachable sets of coherently controllable quantum systems with switchable coupling to a thermal bath. The core problem reduces to studying a hybrid control system (“toy model”) on the standard simplex allowing for two types of evolution: (i) instantaneous permutations and (ii) a one-parameter semigroup of [Formula: see text]-stochastic maps. We generalise upper bounds of the reachable set of this toy model invoking new results on thermomajorisation. Using tools of control theory we fully characterise these reachable sets as well as the set of stabilisable states as exemplified by exact results in qutrit systems.
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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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