English

Alignment of the CS$_2$ Dimer Embedded in Helium Droplets Induced by a Circularly Polarized Laser Pulse

Chemical Physics 2019-04-10 v1 Atomic and Molecular Clusters

Abstract

Dimers of carbon disulfide (CS2_2) molecules embedded in helium nanodroplets are aligned using a moderately intense, 160ps, non-resonant, circularly polarized laser pulse. It is shown that the intermolecular carbon-carbon (C-C) axis aligns along the axis perpendicular to the polarization plane of the alignment laser pulse. The degree of alignment, quantified by cos2(θ2D)\langle \cos^2(\theta_\text{2D}) \rangle, is determined from the emission directions of recoiling CS2_2+^+ fragment ions, created when an intense 40fs probe laser pulse doubly ionizes the dimers. Here, θ2D\theta_\text{2D} is the projection of the angle between the C-C axis on the 2D ion detector and the normal to the polarization plane. cos2(θ2D)\langle \cos^2(\theta_\text{2D}) \rangle is measured as a function of the alignment laser intensity and the results agree well with cos2(θ2D)\langle \cos^2(\theta_\text{2D}) \rangle calculated for gas-phase CS2_2 dimers with a rotational temperature of 0.4K.

Keywords

Cite

@article{arxiv.1901.03184,
  title  = {Alignment of the CS$_2$ Dimer Embedded in Helium Droplets Induced by a Circularly Polarized Laser Pulse},
  author = {James D. Pickering and Benjamin Shepperson and Lars Christiansen and Henrik Stapelfeldt},
  journal= {arXiv preprint arXiv:1901.03184},
  year   = {2019}
}