Molecule & Life Nonlinear Sciences Laboratory, Research Institute for Electronic Science, Hokkaido University, Kita 20 Nishi 10, Kita-ku, Sapporo 001-0020, Japan.
J Chem Phys. 2011 Jan 14;134(2):024317. doi: 10.1063/1.3528937.
Dynamics of passage over a saddle is investigated for a quantum system under the effect of time-dependent external field (laser pulse). We utilize the recently developed theories of nonlinear dynamics in the saddle region, and extend them to incorporate both time-dependence of the external field and quantum mechanical effects of the system. Anharmonic couplings and laser fields with any functional form of time dependence are explicitly taken into account. As the theory is based on the Weyl expression of quantum mechanics, interpretation is facilitated by the classical phase space picture, while no "classical approximation" is involved. We introduce a quantum reactivity operator to extract the reactive part of the system. In a model system with an optimally controlled laser field for the reaction, it is found that the boundary of the reaction in the phase space, extracted by the reactivity operator, is modulated with time by the effect of the laser field, to "catch" the system excited in the reactant region, and then to "release" it into the product region. This method provides new insights in understanding the origin of optimal control of chemical reactions by laser fields.
我们研究了在时变外场(激光脉冲)作用下通过鞍点的量子系统的动力学。我们利用最近发展的鞍点区域非线性动力学理论,并将其扩展到同时包含外场的时变和系统的量子力学效应。明确考虑了非谐耦合和任何时间依赖形式的激光场。由于该理论基于量子力学的 Weyl 表达式,通过经典相空间图像进行解释变得更加容易,而不涉及“经典近似”。我们引入了一个量子反应性算子来提取系统的反应部分。在一个具有最优控制激光场的反应模型系统中,发现通过反应性算子提取的反应在相空间中的边界随着激光场的影响而随时间调制,以“捕获”在反应物区域中激发的系统,然后将其“释放”到产物区域。这种方法为理解激光场对化学反应的最优控制的起源提供了新的见解。