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Electrical access to critical coupling of circularly polarized waves in graphene chiral metamaterials
Author(s) -
Teun-Teun Kim,
Sang Soon Oh,
HyeonDon Kim,
Hyun Sung Park,
Ortwin Hess,
Bumki Min,
Shuang Zhang
Publication year - 2017
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.1701377
Subject(s) - metamaterial , graphene , coupling (piping) , circular polarization , physics , optoelectronics , condensed matter physics , materials science , optics , quantum mechanics , microstrip , composite material
Active control of polarization states of electromagnetic waves is highly desirable because of its diverse applications in information processing, telecommunications, and spectroscopy. However, despite the recent advances using artificial materials, most active polarization control schemes require optical stimuli necessitating complex optical setups. We experimentally demonstrate an alternative-direct electrical tuning of the polarization state of terahertz waves. Combining a chiral metamaterial with a gated single-layer sheet of graphene, we show that transmission of a terahertz wave with one circular polarization can be electrically controlled without affecting that of the other circular polarization, leading to large-intensity modulation depths (>99%) with a low gate voltage. This effective control of polarization is made possible by the full accessibility of three coupling regimes, that is, underdamped, critically damped, and overdamped regimes by electrical control of the graphene properties

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