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Molecular wave packet interferometry and quantum entanglement

机译:分子波包干涉法和量子纠缠

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We study wave packet interferometry (WPI) considering the laser pulse fields both classical and quantum mechanically. WPI occurs in a molecule after subjecting it to the interaction with a sequence of phase-locked ultrashort laser pulses. Typically, the measured quantity is the fluorescence of the molecule from an excited electronic state. This signal has imprinted the interference of the vibrational wave packets prepared by the different laser pulses of the sequence. The consideration of the pulses as quantum entities in the analysis allows us to study the entanglement of the laser pulse states with the molecular states. With a simple model for the molecular system, plus several justified approximations, we solve for the fully quantum mechanical molecule-electromagnetic field state. We then study the reduced density matrices of the molecule and the laser pulses separately. We calculate measurable corrections to the case where the fields are treated classically.(C) 2005 American Institue of Physics.
机译:我们研究波包干涉测量(WPI),同时考虑了经典和量子力学上的激光脉冲场。 WPI在与一系列锁相超短激光脉冲相互作用后发生在分子中。通常,所测量的量是来自激发电子态的分子的荧光。该信号已经印上了序列中不同激光脉冲所产生的振动波包的干扰。在分析中将脉冲视为量子实体,使我们能够研究激光脉冲状态与分子状态的纠缠。通过一个简单的分子系统模型,加上几个合理的近似值,我们解决了全量子机械分子-电磁场的状态。然后,我们分别研究分子的密度降低矩阵和激光脉冲。我们计算了对经典处理场的情况的可测量校正。(C)2005年美国物理学会。

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