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Metasurface reconfiguration through lithium ion intercalation in a transition metal oxide

Authors :
Zanotto, Simone
Blancato, Alessandra
Buchheit, Annika
Muñoz-Castro, Marina
Wiemhöfer, Hans-Dieter
Morichetti, Francesco
Melloni, Andrea
Source :
Article published on Advanced Optical Materials, 2017, 5, 1600732
Publication Year :
2018

Abstract

In the latest years the optical engineer's toolbox has welcomed a new concept, the metasurface. In a metasurface, properly tailored material inclusions are able to reshape the electromagnetic field of an incident beam. Change of amplitude, phase and polarization can be addressed within a thickness of only a fraction of a wavelength. By means of this concept, a radical gain in compactness of optical components is foreseen, even of the most complex ones; other unique features like that of analog computing have also been identified. With this huge potential ready to be disclosed, lack of tunability is still a main barrier to be broken. Metasurfaces must now be made reconfigurable, i.e. able to modify and memorize their state, possibly with a small amount of energy. In this Communication we report low-energy, self-holding metasurface reconfiguration through lithium intercalation in a vanadium pentoxide layer integrated within the photonic device. By a proper meta-atom design, operation on amplitude and phase of linearly polarized light has been demonstrated. In addition, manipulation of circularly polarized light in the form of tunable chirality and tunable handedness-preserving reflection has been implemented. These operations are accomplished using as low as 50 pJ/{\mu}m^{2}, raising lithium intercalation in transition metal oxides as one of the most energy efficient self-holding tuning mechanisms known so far for metasurfaces, with significant perspectives in the whole field of nanophotonics.

Details

Database :
arXiv
Journal :
Article published on Advanced Optical Materials, 2017, 5, 1600732
Publication Type :
Report
Accession number :
edsarx.1810.03351
Document Type :
Working Paper
Full Text :
https://doi.org/10.1002/adom.201600732