TY - JOUR
T1 - Stimulated Brillouin backscattering of hollow Gaussian laser beam in collisionless plasma under relativistic-ponderomotive regime
AU - Gauniyal, R.
AU - Ahmad, N.
AU - Rawat, P.
AU - Gaur, B.
AU - Mahmoud, S. T.
AU - Purohit, G.
N1 - Funding Information:
ACKNOWLEDGMENT The authors are very grateful to United Arab Emirates University for financial support under grant UPAR (2014)-31S164.
Publisher Copyright:
Copyright © Cambridge University Press 2016.
PY - 2017/3/1
Y1 - 2017/3/1
N2 - Stimulated Brillouin backscattering of an intense hollow Gaussian laser beam (HGLB) from collisionless plasma has been investigated under relativistic-ponderomotive regime. The main feature of considered hollow Gaussian laser beam is having the same power at different beam orders with null intensity at the center. Backscattered radiation is generated due to nonlinear interaction between main beam (pump beam) with pre-excited ion acoustic wave (IAW). Modified coupled equations has been set up for the beam width parameters of the main beam, ion-acoustic wave, back-scattered wave, and back reflectivity of stimulated Brillouin scattering (SBS) with the help of the Wentzel-Kramers-Brillouin approximation, fluid equations and paraxial theory approach. These coupled equations are solved analytically and numerically to study the laser intensity in the plasma, the variation of amplitude of the excited IAW and back reflectivity of SBS. The back reflectivity of SBS is found to be highly sensitive to the order of the HGLB, intensity of main laser beam, and plasma density for typical laser and plasma parameters. The focusing of main laser beam (hollow Gaussian) and IAW significantly affected the back reflectivity of SBS. The results show that the self-focusing and back reflectivity is enhanced for higher order modes of HGLB.
AB - Stimulated Brillouin backscattering of an intense hollow Gaussian laser beam (HGLB) from collisionless plasma has been investigated under relativistic-ponderomotive regime. The main feature of considered hollow Gaussian laser beam is having the same power at different beam orders with null intensity at the center. Backscattered radiation is generated due to nonlinear interaction between main beam (pump beam) with pre-excited ion acoustic wave (IAW). Modified coupled equations has been set up for the beam width parameters of the main beam, ion-acoustic wave, back-scattered wave, and back reflectivity of stimulated Brillouin scattering (SBS) with the help of the Wentzel-Kramers-Brillouin approximation, fluid equations and paraxial theory approach. These coupled equations are solved analytically and numerically to study the laser intensity in the plasma, the variation of amplitude of the excited IAW and back reflectivity of SBS. The back reflectivity of SBS is found to be highly sensitive to the order of the HGLB, intensity of main laser beam, and plasma density for typical laser and plasma parameters. The focusing of main laser beam (hollow Gaussian) and IAW significantly affected the back reflectivity of SBS. The results show that the self-focusing and back reflectivity is enhanced for higher order modes of HGLB.
KW - Hollow Gaussian laser beam
KW - Ion acoustic wave
KW - Relativistic-ponderomotive nonlinearity
KW - Self-focusing
KW - Stimulated Brillouin backscattering
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U2 - 10.1017/S0263034616000835
DO - 10.1017/S0263034616000835
M3 - Article
AN - SCOPUS:85007486311
SN - 0263-0346
VL - 35
SP - 81
EP - 91
JO - Laser and Particle Beams
JF - Laser and Particle Beams
IS - 1
ER -