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Phase space structures in chaotic quantum dynamics.

机译:混沌量子动力学中的相空间结构。

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I compare the quantum and classical dynamics of a particle moving in a cosine potential while subject to a time-dependent force. I concentrate here on the behavior of an initially well-localized wave packet at times before the classically chaotic motion is fully developed. I find that the quantum and classical dynamics are indistinguishable well beyond the Ehrenfest time where the wave packet delocalizes. The quantum and classical descriptions first differ precisely when the classical probability density is folded in the vicinity of a hyperbolic fixed point. At this point, the wave function acquires a nodal structure which I show to be the result of a simple beating phenomenon between paths in the semiclassical propagator.; When the interaction of the classical manifold with the hyperbolic fixed point leads to escape from the remnant separatrix, representing the onset of classical chaos, the interference associated with the tendril leads to a long-lived accumulation of quantum amplitude on top of the cosine barrier. This effect also has a semiclassical interpretation, meaning that it arises from the interference between classical paths, but one must expand to second order in Planck's constant to describe the behavior correctly. Both the nodal structure and this pinning of amplitude on the barrier are dynamic mechanisms for the quantum inhibition of mixing.; I then couple the system to a bath of harmonic oscillators in order to study the effect of the environment on these mechanisms. Although an oscillator bath environment brings dissipation as well as noise to the problem, the noise effect dominates for the high temperature, weak coupling regime I study. When there is sufficient noise to render the interfering classical paths indistinguishable, I find that the quantum interference gets erased. This dephasing occurs at very early times, long before there is appreciable dissipation of energy to the environment. Consequently, one can argue that the presence of an environment, even if its effect would be negligible in a nonchaotic setting, allows for the possibility of quantum mixing.
机译:我比较了在余弦势中受时间依赖性力作用的粒子的量子动力学和经典动力学。在此,我将重点放在最初完全定位好的波包的行为上,而此时典型的混沌运动还没有得到充分发展。我发现,在波包离域的Ehrenfest时间之外,量子动力学和经典动力学是无法区分的。当经典概率密度在双曲不动点附近折叠时,量子描述和经典描述首先会出现精确的区别。此时,波动函数获得了一个节点结构,我证明这是半经典传播器中路径之间简单跳动现象的结果。当经典流形与双曲线不动点的相互作用导致从剩余的分离线中逸出时,代表了经典混沌的开始,与卷须相关的干涉导致余弦势垒上量子幅度的长期积累。此效果也具有半经典的解释,这意味着它是由经典路径之间的干扰引起的,但是必须将其扩展到普朗克常数中的第二阶才能正确描述行为。节点结构和这种势垒在势垒上的钉住都是抑制混合量子的动力学机制。然后,我将系统耦合到谐波振荡器池中,以研究环境对这些机制的影响。尽管振荡器槽环境带来了功耗和噪声问题,但在我研究的高温弱耦合方案中,噪声效应仍占主导地位。当有足够的噪声使干扰经典路径无法区分时,我发现量子干扰被消除了。这种相移发生在很早的时间,远早于对环境的能量消散。因此,可以认为环境的存在,即使在非混沌环境中其影响可以忽略不计,也允许量子混合的可能性。

著录项

  • 作者

    Helmkamp, Barbara Smetana.;

  • 作者单位

    Louisiana State University and Agricultural & Mechanical College.;

  • 授予单位 Louisiana State University and Agricultural & Mechanical College.;
  • 学科 Physics General.
  • 学位 Ph.D.
  • 年度 1995
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理学;
  • 关键词

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