Phase-resolved pulse propagation through metallic photonic crystal slabs: plasmonic slow light

Author:

Schönhardt Anja1,Nau Dietmar1,Bauer Christina2,Christ André2,Gräbeldinger Hedi3,Giessen Harald3

Affiliation:

1. Institute of Applied Physics, University of Bonn, Bonn, Germany

2. Max-Planck Institute for Solid State Research, Stuttgart, Germany

3. 4th Physics Institute, University of Stuttgart, Stuttgart, Germany

Abstract

We characterized the electromagnetic field of ultra-short laser pulses after propagation through metallic photonic crystal structures featuring photonic and plasmonic resonances. The complete pulse information, i.e. the envelope and phase of the electromagnetic field, was measured using the technique of cross-correlation frequency resolved optical gating. In good agreement, measurements and scattering matrix simulations show a dispersive behaviour of the spectral phase at the position of the resonances. Asymmetric Fano-type resonances go along with asymmetric phase characteristics. Furthermore, the spectral phase is used to calculate the dispersion of the sample and possible applications in dispersion compensation are investigated. Group refractive indices of 700 and 70 and group delay dispersion values of 90 000 fs 2 and 5000 fs 2 are achieved in transverse electric and transverse magnetic polarization, respectively. The behaviour of extinction and spectral phase can be understood from an intuitive model using the complex transmission amplitude. An associated depiction in the complex plane is a useful approach in this context. This method promises to be valuable also in photonic crystal and filter design, for example, with regards to the symmetrization of the resonances. This article is part of the themed issue ‘New horizons for nanophotonics’.

Funder

ERC (Complexplas), DFG

BMBF

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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