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Local control theory applied to coupled electronic and nuclear motion

机译:局部控制理论应用于电子和核运动的耦合

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摘要

Local control theory is applied to a model system consisting of a proton and electron which move in the field of two fixed ions in a single dimension. The simplicity of the model allows the field-induced coupled electron-nuclear dynamics to be described exactly by numerically solving the time-dependent Schrodinger equation. The results obtained are compared to those obtained from solutions of the Schrodinger equation for the nuclear motion in an adiabatic approach. In a first step, the field-induced transfer of the proton between potential wells in the isolated electronic ground state is investigated. In this case, the transfer can be obtained with a high efficiency. Employing the derived control field in an extended model including the first excited electronic state results in a loss of efficiency due to population transfer between the electronic states. The loss of controllability is even more pronounced when the coupled electron-nuclear dynamics is treated numerically exactly: it is found that the electron is completely detached from the system. Additional calculations show that the proton transfer in the present model cannot be performed with fields derived from local control theory if the correlated particle motion is treated computationally exactly. This hints at the difficulties to be encountered if the electronic degree of freedom is not taken properly into account in calculations on the laser control of molecular processes. (c) 2006 Elsevier B.V. All rights reserved.
机译:局部控制理论被应用于由质子和电子组成的模型系统,质子和电子在一个维中的两个固定离子场中移动。该模型的简单性使得可以通过数值求解时间相关的薛定inger方程来精确描述场感应耦合电子核动力学。将获得的结果与以绝热方法从Schrodinger方程的核运动解获得的结果进行比较。第一步,研究在隔离电子基态下势阱之间质子的场诱导转移。在这种情况下,可以高效地获得转移。在包括第一激发电子状态的扩展模型中采用导出的控制场会由于电子状态之间的人口转移而导致效率损失。当精确地数值处理耦合的电子-核动力学时,可控制性的损失甚至更加明显:发现电子已完全脱离系统。额外的计算表明,如果正确地计算了相关的粒子运动,则无法使用从局部控制理论派生的场来执行本模型中的质子转移。这暗示了如果在分子过程的激光控制计算中没有适当考虑电子自由度,将会遇到困难。 (c)2006 Elsevier B.V.保留所有权利。

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