Title :
Interaction of electromagnetic waves with a magnetized nonuniform plasma slab
Author :
Tang, D.L. ; Sun, A.P. ; Qiu, X.M. ; Chu, Paul K.
Author_Institution :
Southwestern Inst. of Phys., Chengdu, China
fDate :
6/1/2003 12:00:00 AM
Abstract :
The absorption, reflection, and transmission of electromagnetic waves by a nonuniform plasma slab immersed in an ambient uniform magnetic field of various strengths are studied in this paper. The effects of the plasma parameters and magnetic field strength on the absorbed, reflected, and transmitted power are discussed. The magnetized nonuniform plasma slab is modeled by a series of magnetized uniform plasma subslabs. The calculation results show that the effects of the magnetic field strength and density gradient on the absorbed power, as well as the frequency band of resonant absorption, are significant. A complete analysis utilizing the scattering matrix method is also used to compare the above calculation results which neglect multiple reflections between subslab interfaces. Broadband absorption of electromagnetic waves can be achieved by changing the magnetic field strength and plasma density. More than 90% of the electromagnetic wave power can be absorbed in a magnetized nonuniform plasma slab with width of 12 cm and the absorption bandwidth can range from 1 to 20 GHz with different plasma parameters and external magnetic field strengths.
Keywords :
electromagnetic wave absorption; electromagnetic wave reflection; plasma density; plasma electromagnetic wave propagation; 1 to 20 GHz; 12 cm; absorbed power; ambient uniform magnetic field; broadband absorption; density gradient; electromagnetic wave absorption; electromagnetic wave interactions; electromagnetic wave power; electromagnetic wave reflection; electromagnetic wave transmission; external magnetic field strengths; frequency band; magnetic field strength; magnetic field strengths; magnetized nonuniform plasma slab; magnetized uniform plasma subslabs; multiple reflections; plasma density; plasma parameters; reflected power; resonant absorption; scattering matrix method; subslab interfaces; transmitted power; Electromagnetic reflection; Electromagnetic scattering; Electromagnetic wave absorption; Magnetic analysis; Magnetic fields; Magnetic resonance; Plasma density; Plasma waves; Resonant frequency; Slabs;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2003.811648