DocumentCode
779144
Title
Refraction laws for anisotropic media and their application to left-handed metamaterials
Author
Grzegorczyk, Tomasz M. ; Nikku, Madhusudhan ; Chen, Xudong ; Wu, Bae-Ian ; Kong, Jin Au
Author_Institution
Center for Electromagn. Theor. & Applications, Massachusetts Inst. of Technol., Cambridge, MA, USA
Volume
53
Issue
4
fYear
2005
fDate
4/1/2005 12:00:00 AM
Firstpage
1443
Lastpage
1450
Abstract
The refraction of phase and power at the interface between free space and anisotropic media is studied. Under a TE incidence (electric field along yˆ) and ky=0 incidence (where ky is the yˆ component of the wave vector), a closed-form generalization of Snell´s laws is proposed. The two relations (one for the phase and one for the power) are expressed in terms of the incident angle, the constitutive parameters of the anisotropic medium (which can take negative values), and the tilting angle of the dispersion relation. In addition, both positive and negative dispersions are discussed, making the formulas directly usable for the design of left-handed metamaterials. The validation is done by two methods. First, the electromagnetic fields in layered anisotropic media are computed analytically. The angle of refraction of the wave vector is thus directly obtained, while that of the power is obtained by computing the time-average Poynting power. Second, numerical simulations are performed using HFSS to record the deflection of the power by a prism characterized by positive or negative constitutive parameters. For the specific prism experiment, in which the incident angle is equal to the tilting angle of the dispersion relation, we show that the refraction laws reduce to a simple Snell´s law form.
Keywords
anisotropic media; dispersion (wave); dispersion relations; electromagnetic wave refraction; metamaterials; HFSS simulation; Snell´s law; TE incidence; closed-form generalization; dispersion relation; electric field; electromagnetic fields; free space; incident angle; layered anisotropic media; left-handed metamaterials; negative constitutive parameters; negative dispersion; phase refraction; positive constitutive parameters; positive dispersion; power deflection; power refraction; refraction angle; refraction laws; tilting angle; time-average Poynting power; wave vector; Anisotropic magnetoresistance; Dispersion; Electromagnetic refraction; Gold; Metamaterials; Optical refraction; Permeability; Permittivity; Shape control; Tensile stress; Anisotropic media; left-handed metamaterials (LHMs); refraction laws;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/TMTT.2005.845206
Filename
1420784
Link To Document