Title :
Optically Tunable Terahertz Metamaterials on Highly Flexible Substrates
Author :
Kebin Fan ; Xiaoguang Zhao ; Jingdi Zhang ; Kun Geng ; Keiser, G.R. ; Seren, H.R. ; Metcalfe, G.D. ; Wraback, M. ; Xin Zhang ; Averitt, R.D.
Author_Institution :
Dept. of Mech. Eng., Boston Univ., Boston, MA, USA
Abstract :
We present optically tunable metamaterials (MMs) on flexible polymer sheets operating at terahertz (THz) frequencies. The flexible MMs, consisting of electric split-ring resonators (eSRRs) on patterned GaAs patches, were fabricated on a thin polyimide layer using a transfer technique. Optical excitation of the GaAs patches modifies the metamaterial response. Our experimental results revealed that, with increasing fluence, a transmission modulation depth of ~ 60% was achieved at the LC resonant frequency of 0.98 THz. In addition, a similar modulation depth was obtained over a broad range from 1.1 to 1.8 THz. Numerical simulations agree with experiment and indicate efficient tuning of the effective permittivity of the MMs. Our flexible tunable device paves the way to create multilayer nonplanar tunable electromagnetic composites for nonlinear and multifunctional applications, including sensing, modulation, and energy harvesting.
Keywords :
III-V semiconductors; dielectric resonators; gallium arsenide; optical tuning; permittivity; polymers; terahertz metamaterials; GaAs; LC resonant frequency; effective permittivity; electric split-ring resonators; flexible polymer sheets; frequency 1.1 THz to 1.8 THz; highly flexible substrates; optical excitation; optically tunable terahertz metamaterials; transfer technique; transmission modulation depth; Gallium arsenide; Metamaterials; Optical device fabrication; Optical imaging; Polyimides; Substrates; Metamaterial; optical tuning; spectroscopy;
Journal_Title :
Terahertz Science and Technology, IEEE Transactions on
DOI :
10.1109/TTHZ.2013.2285619