Rotation of polarization of light propagating through a gas of molecular super-rotors
arXiv:2112.08795 · doi:10.1103/PhysRevResearch.4.013212
Abstract
We present a detailed theoretical and experimental study of the rotation of the plane of polarization of light traveling through a gas of fast-spinning molecules. This effect is similar to the polarization drag phenomenon predicted by Fermi a century ago and it is a mechanical analog of the Faraday effect. In our experiments, molecules were spun up by an optical centrifuge and brought to the super-rotor state that retains its rotation for a relatively long time. Polarizability properties of fast-rotating molecules were analyzed considering the rotational Doppler effect and Coriolis forces. We used molecular dynamics simulations to account for intermolecular collisions. We found, both experimentally and theoretically, a nontrivial nonmonotonic time dependence of the polarization rotation angle. This time dependence reflects transfer of the angular momentum from rotating molecules to the macroscopic gas flow, which may lead to the birth of gas vortices. Moreover, we show that the long-term behavior of the polarization rotation is sensitive to the details of the intermolecular potential. Thus, the polarization drag effect appears as a novel diagnostic tool for the characterization of intermolecular interaction potentials and studies of collisional processes in gases.
12 pages, 10 figures
References in corpus (6)
- Effects of ultrafast molecular rotation on collisional decoherence
- Molecular rotation movie filmed with high-harmonic generation
- Visualizing molecular unidirectional rotation
- Observation of mechanical Faraday effect in gas media
- Giant Polarization Drag in a Gas of Molecular Superrotors
- State- and molecule-selective rotational control in gas mixtures with a shaped optical centrifuge
Cited by in corpus (6)
- Wave propagation in rotating magnetised plasmas
- Cold plasma waves in the chiral Maxwell-Carroll-Field-Jackiw electrodynamics
- Anisotropic cold plasma modes in chiral vector Maxwell-Carroll-Field-Jackiw electrodynamics
- Rotatory power reversal induced by magnetic-current in bi-isotropic media
- Optical reflection signature of an axion dielectric with magnetic current
- Hypothesis of a bi-isotropic-like plasma permeating the interstellar space