We demonstrate electrically-controlled active tuning of mid-infrared metamaterial resonances using depletion-type devices. The depletion width in an n-doped GaAs epilayer changes with an electric bias, inducing a change of the permittivity of the substrate and leading to frequency tuning of the resonance. We first present our detailed theoretical analysis and then explain experimental data of bias-dependent metamaterial transmission spectra. This electrical tuning is generally applicable to a variety of infrared metamaterials and plasmonic structures, which can find novel applications in chip-scale active infrared devices. (C)2012 Optical Society of Americclose151
We experimentally report a structurally reconfigurable metamaterial for active switching of near-fie...
We demonstrate active tuning of high-Q dielectric metasurfaces by embedding asymmetric silicon meta-...
Metamaterials are engineered periodic composites that have unique refractive-index characteristics n...
We present the theory and experimental demonstration of electrically tunable mid-infrared metamateri...
The mid-infrared (mid-IR, 3 {micro}m -12 {micro}m) is a highly desirable spectral range for imaging ...
We demonstrate tuning of infrared Mie resonances by varying the carrier concentration in doped semic...
Infrared metamaterial design is a rapidly developing field and there are increasing demands for effe...
The principal challenge for achieving reconfigurable optical antennas and metasurfaces is the need t...
We demonstrate experimentally electrical tuning of dielectric metasurface, consisting of silicon di...
Optoelectronic terahertz modulators, operated by actively tuning metamaterial, plasmonic resonator s...
Metasurfaces exploit optical phase, amplitude, and polarization engineering at subwavelength dimensi...
We review the recent experimental results from our Nonlinear Physics Center on tunability and nonlin...
All-dielectric metasurfaces provide a powerful platform for a new generation of flat optical devices...
All-dielectric metasurfaces provide a powerful platform for highly efficient flat optical devices, o...
We demonstrate the active tuning of all-dielectric metasurfaces exhibiting high-quality factor (high...
We experimentally report a structurally reconfigurable metamaterial for active switching of near-fie...
We demonstrate active tuning of high-Q dielectric metasurfaces by embedding asymmetric silicon meta-...
Metamaterials are engineered periodic composites that have unique refractive-index characteristics n...
We present the theory and experimental demonstration of electrically tunable mid-infrared metamateri...
The mid-infrared (mid-IR, 3 {micro}m -12 {micro}m) is a highly desirable spectral range for imaging ...
We demonstrate tuning of infrared Mie resonances by varying the carrier concentration in doped semic...
Infrared metamaterial design is a rapidly developing field and there are increasing demands for effe...
The principal challenge for achieving reconfigurable optical antennas and metasurfaces is the need t...
We demonstrate experimentally electrical tuning of dielectric metasurface, consisting of silicon di...
Optoelectronic terahertz modulators, operated by actively tuning metamaterial, plasmonic resonator s...
Metasurfaces exploit optical phase, amplitude, and polarization engineering at subwavelength dimensi...
We review the recent experimental results from our Nonlinear Physics Center on tunability and nonlin...
All-dielectric metasurfaces provide a powerful platform for a new generation of flat optical devices...
All-dielectric metasurfaces provide a powerful platform for highly efficient flat optical devices, o...
We demonstrate the active tuning of all-dielectric metasurfaces exhibiting high-quality factor (high...
We experimentally report a structurally reconfigurable metamaterial for active switching of near-fie...
We demonstrate active tuning of high-Q dielectric metasurfaces by embedding asymmetric silicon meta-...
Metamaterials are engineered periodic composites that have unique refractive-index characteristics n...