Zou Shiyang, Sanz Cristina, Balint-Kurti Gabriel G
Institute of Applied Physics and Computational Mathematics, P.O. Box 8009, Beijing 100088, People's Republic of China.
J Chem Phys. 2008 Sep 28;129(12):124307. doi: 10.1063/1.2976154.
We present an analytic scheme for designing laser pulses to manipulate the field-free molecular alignment of a homonuclear diatomic molecule. The scheme is based on the use of a generalized pulse-area theorem and makes use of pulses constructed around two-photon resonant frequencies. In the proposed scheme, the populations and relative phases of the rovibrational states of the molecule are independently controlled utilizing changes in the laser intensity and in the carrier-envelope phase difference, respectively. This allows us to create the correct coherent superposition of rovibrational states needed to achieve optimal molecular alignment. The validity and efficiency of the scheme are demonstrated by explicit application to the H(2) molecule. The analytically designed laser pulses are tested by exact numerical solutions of the time-dependent Schrodinger equation including laser-molecule interactions to all orders of the field strength. The design of a sequence of pulses to further enhance molecular alignment is also discussed and tested. It is found that the rotating wave approximation used in the analytic design of the laser pulses leads to small errors in the prediction of the relative phase of the rotational states. It is further shown how these errors may be easily corrected.
我们提出了一种用于设计激光脉冲的解析方案,以操控同核双原子分子的无场分子取向。该方案基于广义脉冲面积定理,并利用围绕双光子共振频率构建的脉冲。在所提出的方案中,分别利用激光强度和载波包络相位差的变化,独立控制分子振转态的布居和相对相位。这使我们能够创建实现最佳分子取向所需的振转态的正确相干叠加。通过对H₂分子的具体应用,证明了该方案的有效性和效率。通过包含激光与分子相互作用至场强所有阶次的含时薛定谔方程的精确数值解,对解析设计的激光脉冲进行了测试。还讨论并测试了用于进一步增强分子取向的脉冲序列设计。结果发现,激光脉冲解析设计中使用的旋转波近似在预测转动态相对相位时会导致小误差。进一步表明了如何轻松校正这些误差。