FP7Individual fellowship2009–2011

EL DORADO · electromagnetic Doppler reflection and refraction in artificially-dielectric objects

FP7 — People (Marie Curie Actions)

Duration
2009-09-20 → 2011-09-19
EU contribution
€219,258
Participants
1
Scheme
MC-IOF

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Results in brief

electromagnetic Doppler reflection and refraction in artificially-dielectric objects

During the project "el Dorado", Dr. Zeno Gaburro has invented a new kind of antenna, with a V-shape and adjustable parameters. Instead of working as a traditional receiving or transmitting antenna, the V-shaped antenna is a light scattering element with controllable amplitude, phase and polarization. With these elements, Dr. Gaburro has designed an interface that modifies the laws of reflection and refractions, by engineering reflected and refracted beams with arbitrary propagation angles. Reflection and refraction are arguably among the most fundamental phenomena in optics. They have been observed and studied since the early days of the history of science. The laws that regulate them have been quantitatively known for about one thousand years. With his team at Harvard, led by Prof. Capasso, he has experimentally demonstrated the idea. The work has been published recently as a Research Article by Science magazine (N. Yu, P. Genevet, M. A. Kats, F. Aieta, J.-P. Tetienne, F. Capasso, and Z. Gaburro, "Light Propagation with Phase Discontinuities: Generalized Laws of Reflection and Refraction", Science 334, 333, 2011), and has deserved the cover of the issue in which it appeared a perspective commentary (N. Engheta, "Antenna-Guided Light", Science 334, 317, 2011). In November 2011, Physics Today has featured this work as cover story. These antennas work as basic building blocks for phase engineering. In the metamaterial jargon, they can actually be thought as "meta-atoms", i.e. elemental constituents of "metasurfaces". The latter are a flexible enabling technology for wavefront engineering, which goes well beyond the manipulation of reflection and refraction of plane waves. For example, the team has experimentally demonstrated the generation of optical vortices with arbitrary topological charges (Science, cited). On a complementary perspective, the functionality one of these antennas mimics very closely the behavior of a tiny high-frequency circuit: there is a signal-receiving mechanism, a processing mechanism (the phase shift, different in each antenna), and a signal-transmitting mechanism. These devices are similar to phased-array radioantennas. There is however a fundamental difference in terms of speed performance: our "circuits" work at frequencies that are at least 3 orders of magnitude faster than highest radio frequencies, and at room temperature.

Data: CORDIS, © European Union

Project objective

The goal of this project is the achievement of sharp dynamic (i.e., time dependent) reflecting/refracting interfaces in metamaterials. Metamaterials are artificially structured materials, designed to interact with electromagnetic waves, and whose structure has feature size well below the wavelength. This implies that the detailed structure is not resolved in the interaction, and the material behaves as a homogeneous medium to the wave. Thus one can fabricate materials with properties that are not found in natural materials. Most known examples are metamaterials that exhibit simultaneously a negative real part of dielectric permittivity and a negative real part of magnetic permeability for a designed range of electromagnetic wavelengths. In this project, however, we aim at achieving fast and large tunability of permittivity in real time. This will let us generate dielectric refracting and reflecting dynamic interfaces. The difference from the known phenomenon of reflection and refraction is that here we can move these interfaces, and - importantly - with no true mechanical motions of media. Absence of mechanical motions allows for potentially very high speed movements", making this an enabling technique to observe intriguing phenomena, such as photonic energy lifters, strong Doppler shifts, wavelength converters, and, potentially, event horizons and emission of Unruh radiation. The work will be performed at Harvard University (USA) for the outgoing phase (12 months), and at the Università degli Studi di Trento for the return phase (12 months)."

Original text from CORDIS.

Participants

  • UNIVERSITA DEGLI STUDI DI TRENTO · TrentoCoordinatorItaly

Links

Data: CORDIS, © European Union