Hybrid Matrix Method for Stable Analysis of Electromagnetic Waves in Stratified Bianisotropic Media

2008 ◽  
Vol 18 (10) ◽  
pp. 653-655 ◽  
Author(s):  
Jing Ning ◽  
Eng Leong Tan
2016 ◽  
Vol 93 ◽  
pp. 186-201 ◽  
Author(s):  
J.A. Briones-Torres ◽  
R. Pernas-Salomón ◽  
R. Pérez-Álvarez ◽  
I. Rodríguez-Vargas

In the present paper, we modify the transfer-matrix method to study the dissipation-free transition of electromagnetic waves of terahertz range through a plate of layered superconductor embedded in the dielectric environment in the presence of external direct current (dc) magnetic field. In this work, we сonsider TM-polarized electromagnetic waves. The setup is arranged in such a way that the dielectric and superconducting layers in the plate are perpendicular to its interface, and the external magnetic field is directed along the plate and parallel to the layers. We consider the case of a weak external dc field at which magnetic vortices do not penetrate the plate. Due to the nonlinearity of the Josephson plasma formed in the layered superconductor, the dc magnetic field penetrates non-uniformly into the plate and affects the electromagnetic wave. Hence, the magnitude of the external dc magnetic field can be used as a variable parameter to tune various phenomena associated with the propagation of an electromagnetic waves in layered superconductors. In the presence of the external homogeneous dc magnetic field, linear electromagnetic waves in the layered superconductor turn out to be non-exponential. Therefore we cannot directly apply the transfer matrix method, in which the amplitudes of the corresponding exponents are compared. However, in the present paper, it is shown that for a sufficiently thick plate, the matrices describing the wave transfer through the plate can be introduced. The analytical expressions for these matrices are derived explicitly in terms of special Legendre functions. The obtained transfer-matrices can be used for the further study of the wave transfer through the layered superconductor in the presence of an external dc magnetic field.


2006 ◽  
pp. 163-199
Author(s):  
Elliott K. Gozansky ◽  
Varatharasa Thiviyanathan ◽  
Nishantha Illangasekare ◽  
Bruce A. Luxon ◽  
David G. Gorenstein
Keyword(s):  

2021 ◽  
Author(s):  
Ali Baseri ◽  
Alireza Keshavarz

Abstract This study investigates the propagating of electromagnetic waves through a one-dimensional quasi-photonic crystal with the transfer matrix method. Our proposed structure consists of two types of double negative metamaterials, organized according to the Thue-Morse sequence law. The results show that changing the structure via quasi-periodic arrangements makes the outcome more varied than applying the absolute periodic arrangement. Given that, our desirable results of interest are more conveniently achieved. The structure completely stops-both s and p polarization at the lower frequencies, for all incidence angles. It also partially stops s and p polarization, at higher frequencies. Moreover, the achieved transmittance spectrum contains several omnidirectional band-gaps, which remain invariant with changes in the incidence angle. The oscillation of the transmittance values also becomes more intense at higher orders of the period number. This study could pave the way for optimizing of photonic crystal circuits, splitters, switches, etc.


2019 ◽  
Vol 14 (11) ◽  
pp. 1532-1538 ◽  
Author(s):  
S. E.-S. Abd El-Ghany

Based on the transfer matrix method (TMM), the interaction of electromagnetic waves in ultraviolet (Uv), visible and Infrared (IR) spectra with ternary one-dimensional photonic crystals with different double defects, has been theoretically studied. The multilayer system has been taken as temperature dependent. The numerical results showed that the number of photonic band gap (PBG) was increased by increasing the degree of temperature. The variation of temperature, the thickness of the second layer and both the type and the thickness of the second defect caused shifting of the photonic ban gaps to higher wavelengths which can be exploited in the design of temperature sensors.


1995 ◽  
Vol 106 (2) ◽  
pp. 164-169 ◽  
Author(s):  
Q. Zhang ◽  
J.Y. Chen ◽  
E.K. Gozansky ◽  
F. Zhu ◽  
P.L. Jackson ◽  
...  

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