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开放系统纠缠动力学:关键问题综述。

Open-system dynamics of entanglement: a key issues review.

机构信息

Dahlem Center for Complex Quantum Systems, Freie Universität Berlin, 14195 Berlin, Germany.

出版信息

Rep Prog Phys. 2015 Apr;78(4):042001. doi: 10.1088/0034-4885/78/4/042001. Epub 2015 Mar 26.

Abstract

One of the greatest challenges in the fields of quantum information processing and quantum technologies is the detailed coherent control over each and every constituent of quantum systems with an ever increasing number of particles. Within this endeavor, harnessing of many-body entanglement against the detrimental effects of the environment is a major pressing issue. Besides being an important concept from a fundamental standpoint, entanglement has been recognized as a crucial resource for quantum speed-ups or performance enhancements over classical methods. Understanding and controlling many-body entanglement in open systems may have strong implications in quantum computing, quantum simulations of many-body systems, secure quantum communication or cryptography, quantum metrology, our understanding of the quantum-to-classical transition, and other important questions of quantum foundations.In this paper we present an overview of recent theoretical and experimental efforts to underpin the dynamics of entanglement under the influence of noise. Entanglement is thus taken as a dynamic quantity on its own, and we survey how it evolves due to the unavoidable interaction of the entangled system with its surroundings. We analyze several scenarios, corresponding to different families of states and environments, which render a very rich diversity of dynamical behaviors.In contrast to single-particle quantities, like populations and coherences, which typically vanish only asymptotically in time, entanglement may disappear at a finite time. In addition, important classes of entanglement display an exponential decay with the number of particles when subject to local noise, which poses yet another threat to the already-challenging scaling of quantum technologies. Other classes, however, turn out to be extremely robust against local noise. Theoretical results and recent experiments regarding the difference between local and global decoherence are summarized. Control and robustness-enhancement techniques, scaling laws, statistical and geometrical aspects of multipartite-entanglement decay are also reviewed; all in order to give a broad picture of entanglement dynamics in open quantum systems addressed to both theorists and experimentalists inside and outside the field of quantum information.

摘要

在量子信息处理和量子技术领域中,最大的挑战之一是对具有越来越多粒子的量子系统的每个组成部分进行详细的相干控制。在这一努力中,利用多体纠缠来对抗环境的不利影响是一个主要的紧迫问题。除了从基本立场来看是一个重要概念外,纠缠已被认为是实现量子加速或超越经典方法的性能提升的关键资源。在开放系统中理解和控制多体纠缠可能对量子计算、多体系统的量子模拟、安全量子通信或密码学、量子计量学、我们对量子到经典转变的理解以及其他重要的量子基础问题具有重要意义。

在本文中,我们介绍了最近为支持噪声影响下纠缠动力学而进行的理论和实验努力的概述。因此,纠缠被视为一个自身的动态量,我们调查了由于纠缠系统与周围环境的不可避免相互作用,它是如何演变的。我们分析了几种情况,对应于不同的态和环境家族,这些情况呈现出非常丰富的动态行为。

与典型地仅随时间渐近消失的单粒子量(如群体和相干性)不同,纠缠可能会在有限时间内消失。此外,当受到局部噪声时,重要的纠缠类会表现出与粒子数呈指数衰减的关系,这对已经具有挑战性的量子技术的扩展又构成了另一个威胁。然而,其他类则对局部噪声表现出极强的鲁棒性。总结了关于局部和全局退相干之间差异的理论结果和最近的实验。还回顾了控制和鲁棒性增强技术、多体纠缠衰减的标度律、统计和几何方面;所有这些都是为了给量子信息领域内外的理论家和实验家提供一个关于开放量子系统中纠缠动力学的广泛图景。

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