Thomas Esben F, Henriksen Niels E
Department of Chemistry, Technical University of Denmark, Building 207, DK-2800 Kongens Lyngby, Denmark.
J Chem Phys. 2016 Jun 28;144(24):244307. doi: 10.1063/1.4954663.
The term dynamic Stark control (DSC) has been used to describe methods of quantum control related to the dynamic Stark effect, i.e., a time-dependent distortion of energy levels. Here, we employ analytical models that present clear and concise interpretations of the principles behind DSC. Within a linearly forced harmonic oscillator model of vibrational excitation, we show how the vibrational amplitude is related to the pulse envelope, and independent of the carrier frequency of the laser pulse, in the DSC regime. Furthermore, we shed light on the DSC regarding the construction of optimal pulse envelopes - from a time-domain as well as a frequency-domain perspective. Finally, in a numerical study beyond the linearly forced harmonic oscillator model, we show that a pulse envelope can be constructed such that a vibrational excitation into a specific excited vibrational eigenstate is accomplished. The pulse envelope is constructed such that high intensities are avoided in order to eliminate the process of ionization.
术语动态斯塔克控制(DSC)已被用于描述与动态斯塔克效应相关的量子控制方法,即能级的时间依赖性畸变。在此,我们采用解析模型,这些模型对DSC背后的原理给出了清晰简洁的解释。在振动激发的线性受迫谐振子模型中,我们展示了在DSC机制下,振动幅度如何与脉冲包络相关,且与激光脉冲的载波频率无关。此外,我们从时域和频域的角度阐明了关于构建最优脉冲包络的DSC。最后,在超出线性受迫谐振子模型的数值研究中,我们表明可以构建一个脉冲包络,使得实现向特定激发振动本征态的振动激发。构建脉冲包络时要避免高强度,以消除电离过程。