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经典与量子哈密顿棘轮中的混沌与对应:一种海森堡方法。

Chaos and correspondence in classical and quantum Hamiltonian ratchets: a Heisenberg approach.

作者信息

Pelc Jordan, Gong Jiangbin, Brumer Paul

机构信息

Chemical Physics Theory Group, Department of Chemistry, and Centre for Quantum Information and Quantum Control, University of Toronto, Toronto, Canada M5S 3H6.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2009 Jun;79(6 Pt 2):066207. doi: 10.1103/PhysRevE.79.066207. Epub 2009 Jun 16.

Abstract

Previous work [Gong and Brumer, Phys. Rev. Lett. 97, 240602 (2006)] motivates this study as to how asymmetry-driven quantum ratchet effects can persist despite a corresponding fully chaotic classical phase space. A simple perspective of ratchet dynamics, based on the Heisenberg picture, is introduced. We show that ratchet effects are in principle of common origin in classical and quantum mechanics, although full chaos suppresses these effects in the former but not necessarily the latter. The relationship between ratchet effects and coherent dynamical control is noted.

摘要

先前的工作[龚和布鲁默,《物理评论快报》97, 240602 (2006)]促使了本研究,探究尽管存在相应的完全混沌的经典相空间,不对称驱动的量子棘轮效应如何能够持续存在。引入了一种基于海森堡绘景的棘轮动力学的简单观点。我们表明,棘轮效应在经典力学和量子力学中原则上具有共同起源,尽管完全混沌在经典力学中会抑制这些效应,但在量子力学中不一定如此。同时指出了棘轮效应与相干动力学控制之间的关系。

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