English

Strongly aligned molecules inside helium droplets in the near-adiabatic regime

Chemical Physics 2017-06-28 v1 Mesoscale and Nanoscale Physics Other Condensed Matter Atomic and Molecular Clusters Atomic Physics

Abstract

Iodine (I2_2) molecules embedded in He nanodroplets are aligned by a 160 ps long laser pulse. The highest degree of alignment, occurring at the peak of the pulse and quantified by cos2θ2D\langle \cos^2 \theta_{2D} \rangle, is measured as a function of the laser intensity. The results are well described by cos2θ2D\langle \cos^2 \theta_{2D} \rangle calculated for a gas of isolated molecules each with an effective rotational constant of 0.6 times the gas-phase value, and at a temperature of 0.4 K. Theoretical analysis using the angulon quasiparticle to describe rotating molecules in superfluid helium rationalizes why the alignment mechanism is similar to that of isolated molecules with an effective rotational constant. A major advantage of molecules in He droplets is that their 0.4 K temperature leads to stronger alignment than what can generally be achieved for gas phase molecules -- here demonstrated by a direct comparison of the droplet results to measurements on a \sim 1 K supersonic beam of isolated molecules. This point is further illustrated for more complex system by measurements on 1,4-diiodobenzene and 1,4-dibromobenzene. For all three molecular species studied the highest values of cos2θ2D\langle \cos^2 \theta_{2D} \rangle achieved in He droplets exceed 0.96.

Keywords

Cite

@article{arxiv.1704.03684,
  title  = {Strongly aligned molecules inside helium droplets in the near-adiabatic regime},
  author = {Benjamin Shepperson and Adam S. Chatterley and Anders A. Søndergaard and Lars Christiansen and Mikhail Lemeshko and Henrik Stapelfeldt},
  journal= {arXiv preprint arXiv:1704.03684},
  year   = {2017}
}

Comments

11 pages, 8 figures