DocumentCode :
3603760
Title :
Modeling of Magnetized Graphene From Microwave to THz Range by DGTD With a Scalar RBC and an ADE
Author :
Ping Li ; Li Jun Jiang
Author_Institution :
Dept. of Electr. & Electron. Eng., Univ. of Hong Kong, Hong Kong, China
Volume :
63
Issue :
10
fYear :
2015
Firstpage :
4458
Lastpage :
4467
Abstract :
This paper presents a discontinuous Galerkin time-domain (DGTD) method for the transient analysis of magnetized graphene from the microwave to terahertz (THz) frequencies. By considering the atom thick graphene layer as an infinitely thin conductive sheet with finite surface conductivity, a frequency-dependent anisotropic resistive boundary condition (RBC) is obtained. Based on this RBC, the direct volumetric discretization of graphene layer is avoided. Instead of directly deriving the numerical flux for DGTD considering the presence of this anisotropic and dispersive RBC, an auxiliary surface polarization current governed by a first-order time-dependent partial differential equation (PDE) is introduced over the graphene with the purpose to obtain an isotropic and simultaneously nondispersive RBC. In this way, the new formulated numerical flux expression derived from the Rankine-Hugoniot jump relations is isotropic, and no time-domain convolution is involved in the finalized matrix equations. To verify the applicability and accuracy of the proposed algorithm, the Faraday rotation and the surface plasmon resonance of a plane wave through magnetically biased graphene are investigated. For open-region scattering problems, a hybrid DGTD and time-domain boundary integral (TDBI) method is applied to rigorously truncate the computational domain.
Keywords :
Faraday effect; Galerkin method; boundary integral equations; graphene; partial differential equations; surface plasmon resonance; time-domain analysis; transient analysis; ADE; C; DGTD method; Faraday rotation; Rankine-Hugoniot jump relations; THz range; atom thick graphene layer; auxiliary differential equation; auxiliary surface polarization current; direct volumetric discretization; discontinuous Galerkin time-domain method; finalized matrix equations; finite surface conductivity; first-order time-dependent partial differential equation; formulated numerical flux expression; frequency-dependent anisotropic resistive boundary condition; infinitely thin conductive sheet; magnetized graphene; microwave range; open-region scattering problems; scalar RBC; surface plasmon resonance; time-domain boundary integral method; transient analysis; Conductivity; Graphene; Magnetic domains; Magnetostatics; Perpendicular magnetic anisotropy; Time-domain analysis; Anisotropic resistive boundary condition (RBC); Auxiliary differential equation (ADE); anisotropic resistive boundary condition (RBC); auxiliary differential equation (ADE); discontinuous Galerkin time-domain (DGTD) method; magnetized graphene; time-domain boundary integral (TDBI) algorithm;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2015.2456977
Filename :
7160688
Link To Document :
بازگشت