Conservation of Torus-Knot Angular Momentum in High-Harmonic Generation Driven by Fields with Spin-Orbit Mixing
Abstract
The fundamental polarization singularities of light are symmetric under coordinated rotations: transformations which rotate the spatial dependence by an angle θ and the polarization by a fraction γθ of that angle, as generated by 'mixed' angular momenta of the form L + γS . Generically, the coordination parameter γ has been thought to be restricted to integer or half-integer values. We show that this constraint is an artifact, which originates from the restriction to monochromatic fields, and that a wider variety of singularities can be obtained using the methods of strong-field physics - in particular, the time-domain view on polychromatic fields. We show that these new optical singularities present novel topologies, and how they can be characterized analytically and experimentally. Finally, we explore how these topologies interact with strong-field drivers, by showing that the generator for the symmetry group of these singularities - a mixed type of 'torus-knot' angular momentum - is conserved in nonlinear optical interactions.
- Publication:
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APS Division of Atomic, Molecular and Optical Physics Meeting Abstracts
- Pub Date:
- 2020
- Bibcode:
- 2020APS..DMPM04003P