Title :
Experimental demonstration of self-collimation in low-index-contrast photonic crystals in the millimeter-wave regime
Author :
Lu, Zhaolin ; Schuetz, Christopher A. ; Shi, Shouyuan ; Chen, Caihua ; Behrmann, Gregory P. ; Prather, Dannis W.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Delaware, Newark, DE, USA
fDate :
4/1/2005 12:00:00 AM
Abstract :
In this paper, we present the theoretical and experimental results for self-collimation in low-index-contrast photonic crystals (PhCs) in the millimeter-wave (MMW) region of the electromagnetic spectrum. The design of the PhCs is based on their equifrequency contours and the two-dimensional finite-difference time-domain simulation results. In the experiments, the MMW PhCs are fabricated in Rexolite slabs by a CNC micro-milling system. A MMW imaging system is built based on a vector network analyzer. The input source is launched either through a waveguide or a monopole, while the field distribution is acquired by scanning a monopole antenna over the surface of the photonic crystal to detect the profile of the evanescent waves. In both cases, we have observed and characterized the self-collimation effect for both the amplitude and phase of the propagating electromagnetic wave in low-index-contrast photonic crystals.
Keywords :
collimators; finite difference time-domain analysis; millimetre wave imaging; millimetre wave propagation; photonic band gap; photonic crystals; CNC micro-milling system; MMW imaging; Rexolite slabs; electromagnetic wave; equifrequency contours; evanescent waves; field distribution; finite-difference time-domain simulation; imaging system; low-index-contrast photonic crystals; monopole antenna; self-collimation effect; vector network analyzer; Antennas and propagation; Computer numerical control; Electromagnetic spectrum; Electromagnetic waveguides; Finite difference methods; Image analysis; Photonic crystals; Slabs; Surface waves; Time domain analysis; MMW imaging; Millimeter wave (MMW); photonic crystal (PhC); self-collimation; waveguiding;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2005.845769