Optical magnetic field enhancement using ultrafast azimuthally polarized laser beams and tailored metallic nanoantennas

Author:

Martín-Hernández Rodrigo1ORCID,Grünewald Lorenz2ORCID,Sánchez-Tejerina Luis13ORCID,Plaja Luis1ORCID,Conejero Jarque Enrique1ORCID,Hernández-García Carlos1ORCID,Mai SebastianORCID

Affiliation:

1. Universidad de Salamanca

2. University of Vienna

3. Universidad de Valladolid

Abstract

Structured light provides unique opportunities to spatially tailor the electromagnetic field of laser beams. These include the possibility of a sub-wavelength spatial separation of their electric and magnetic fields, which would allow isolating interactions of matter with pure magnetic (or electric) fields. This could be particularly interesting in molecular spectroscopy, as excitations due to electric and—usually very weak—magnetic transition dipole moments can be disentangled. In this work, we show that the use of tailored metallic nanoantennas drastically enhances the strength of the longitudinal magnetic field carried by an ultrafast azimuthally polarized beam (by a factor of ∼65), which is spatially separated from the electric field by the beam’s symmetry. Such enhancement is due to favorable phase-matching of the magnetic field induced by the electric current loops created in the antennas. Our particle-in-cell simulation results demonstrate that the interactions of moderately intense (∼1011  W/cm2) and ultrafast azimuthally polarized laser beams with conical, parabolic, Gaussian, or logarithmic metallic nanoantennas provide spatially isolated magnetic field pulses of several tens of Tesla.

Funder

European Research Council

Ministerio de Ciencia e Innovación

Austrian Science Fund

Publisher

Optica Publishing Group

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