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Nonlinear terahertz metamaterials with active electrical control
Author(s) -
George R. Keiser,
Nicholas Karl,
Pei Liu,
C. Tulloss,
HouTong Chen,
Antoinette J. Taylor,
Igal Brener,
John L. Reno,
Daniel M. Mittleman
Publication year - 2017
Publication title -
applied physics letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.182
H-Index - 442
eISSN - 1077-3118
pISSN - 0003-6951
DOI - 10.1063/1.4990671
Subject(s) - terahertz radiation , metamaterial , split ring resonator , optoelectronics , materials science , electric field , terahertz spectroscopy and technology , resonator , dc bias , optics , intensity modulation , metamaterial absorber , physics , phase modulation , voltage , quantum mechanics , tunable metamaterials , phase noise
We present a study of an electrically modulated nonlinear metamaterial consisting of an array of split-ring resonators fabricated on n-type gallium arsenide. The resonant metamaterial nonlinearity appears as an intensity-dependent transmission minimum at terahertz frequencies and arises from the interaction between local electric fields in the split-ring resonator (SRR) capacitive gaps and charge carriers in the n-type substrate. We investigate the active tuning range of the metamaterial device as the incident terahertz field intensity is increased and conversely the effect of an applied DC bias on the terahertz field-induced nonlinear modulation of the metamaterial response. Applying a DC bias to the metamaterial sample alters the nonlinear response and reduces the net nonlinear modulation. Similarly, increasing the incident terahertz field intensity decreases the net modulation induced by an applied DC bias. We interpret these results in terms of DC and terahertz-field-assisted carrier acceleration, sca...

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