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Wavepacket dynamics, quantum reversibility, and random matrix theory

机译:波包动力学,量子可逆性和随机矩阵理论

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We introduce and analyze the physics of "driving reversal" experiments. These are prototype wavepacket dynamics scenarios probing quantum irreversibility. Unlike the mostly hypothetical "time reversal" concept, a "driving reversal" scenario can be realized in a laboratory experiment, and is relevant to the theory of quantum dissipation. We study both the energy spreading and the survival probability in such experiments. We also introduce and study the "compensation time" (time of maximum return) in such a scenario. Extensive effort is devoted to figuring out the capability of either linear response theory or random matrix theory (RMT) to describe specific features of the time evolution. We explain that RMT modeling leads to a strong non-perturbative response effect that differs from the semiclassical behavior. (c) 2005 Elsevier Inc. All rights reserved.
机译:我们介绍和分析“驾驶反向”实验的物理原理。这些是探测量子不可逆性的原型波包动力学方案。与大多数假设的“时间反转”概念不同,“驾驶反转”场景可以在实验室实验中实现,并且与量子耗散理论相关。我们在这种实验中研究了能量扩散和生存概率。在这种情况下,我们还将介绍和研究“补偿时间”(最大回报时间)。大量的精力致力于弄清线性响应理论或随机矩阵理论(RMT)描述时间演化特定特征的能力。我们解释说,RMT建模会导致强大的非扰动响应效果,该效果不同于半经典行为。 (c)2005 Elsevier Inc.保留所有权利。

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