English

Raman scattering of plane-wave and twisted light off chiral molecular liquids

Optics 2021-12-15 v2 Soft Condensed Matter Strongly Correlated Electrons

Abstract

We present an experimental study of the quasi-elastic Raman scattering (QES) of plane-wave and twisted light by liquid crystals. Depending on their temperature, these crystals can exhibit isotropic, nematic and chiral nematic phases. The question is addressed of how the phase of a crystal and the state of incident light can affect the quasi-elastic energy spectra of the scattered radiation, whose shape is usually described by the combination of Lorentzian and Gaussian components. Special attention is paid to the \textit{chiral phase}, for which the Raman QES spectrum is dominated by a Lorentzian with reduced linewidth, pointing to diminished disorder and configurational entropy. Moreover, this phase is also known for a regime of iridescence (selective backscattering) which arises when the wavelength of incident light becomes comparable with the chiral pitch length. Detailed measurements, performed in this \textit{resonant} regime and by employing twisted light, carrying various projections of the orbital angular momentum (OAM), have indicated a low-energy scattering surplus depending on OAM. We argue that this observation might indicate a transfer of angular momentum between light and the liquid crystal.

Keywords

Cite

@article{arxiv.2107.10589,
  title  = {Raman scattering of plane-wave and twisted light off chiral molecular liquids},
  author = {Florian Büscher and Silvia Müllner and Dirk Wulferding and Yurii G. Pashkevich and Vladimir Gnezdilov and Anton A. Peshkov and Andrey Surzhykov and Peter Lemmens},
  journal= {arXiv preprint arXiv:2107.10589},
  year   = {2021}
}

Comments

4 figures, two References added and ACKNOWLEDGMENT, submitted to Low Temperature Physics/Fizika Nizkikh Temperatur 47, No. 11, (2021)