更健康的半经典动力学

IF 5.3 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Pub Date : 2024-12-16 DOI:10.22331/q-2024-12-16-1565
Isaac Layton, Jonathan Oppenheim, Zachary Weller-Davies
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引用次数: 0

摘要

我们研究了量子系统对经典系统的反作用。以半经典物理在任何时候都应该由经典相空间中的一个点和希尔伯特空间中的一个量子态来描述为出发点,我们考虑了一种展开方法,用经典量子轨迹来描述系统。在经典轨迹连续、演化自主的前提下,在经典-量子态结合的条件下,导出了动力学的一般形式。这个要求是必要的,以便一致地描述概率,并迫使动力学是随机的,当反作用力是非零的。由此产生的运动方程是标准半经典运动方程的自然推广,但由于由此产生的动力学在经典-量子态的组合中是线性的,因此它不会导致通常基于期望值的进化定律所遵循的病态。特别是,我们提出的进化定律解释了经典和量子系统之间的相关性,这解决了与其他半经典方法相关的问题。此外,尽管经典自由度的可预测性被打破,量子态在经典轨迹上的演化是确定性的,前提是退相干和扩散之间的权衡是饱和的。因此,当以经典轨迹为条件时,量子态保持纯态。为了说明这些观点,我们数值模拟了一些半经典的玩具模型,包括真空波动作为驱动宇宙膨胀的来源之一。最后,我们讨论了这些结果在半经典引力和黑洞信息问题中的应用。
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A healthier semi-classical dynamics
We study the back-reaction of quantum systems onto classical ones. Taking the starting point that semi-classical physics should be described at all times by a point in classical phase space and a quantum state in Hilbert space, we consider an unravelling approach, describing the system in terms of a classical-quantum trajectory. We derive the general form of the dynamics under the assumptions that the classical trajectories are continuous and the evolution is autonomous, and the requirement that the dynamics is linear and completely positive in the combined classical-quantum state. This requirement is necessary in order to consistently describe probabilities, and forces the dynamics to be stochastic when the back-reaction is non-zero. The resulting equations of motion are natural generalisations of the standard semi-classical equations of motion, but since the resulting dynamics is linear in the combined classical-quantum state, it does not lead to the pathologies which usually follow from evolution laws based on expectation values. In particular, the evolution laws we present account for correlations between the classical and quantum system, which resolves issues associated with other semi-classical approaches. In addition, despite a breakdown of predictability in the classical degrees of freedom, the quantum state evolves deterministically conditioned on the classical trajectory, provided a trade-off between decoherence and diffusion is saturated. As a result, the quantum state remains pure when conditioned on the classical trajectory. To illustrate these points, we numerically simulate a number of semi-classical toy models, including one of vacuum fluctuations as a source driving the expansion of the universe. Finally, we discuss the application of these results to semi-classical gravity, and the black-hole information problem.
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来源期刊
Quantum
Quantum Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
9.20
自引率
10.90%
发文量
241
审稿时长
16 weeks
期刊介绍: Quantum is an open-access peer-reviewed journal for quantum science and related fields. Quantum is non-profit and community-run: an effort by researchers and for researchers to make science more open and publishing more transparent and efficient.
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