A. Bourgeade et E. Freysz, Computational modeling of second-harmonic generation by solution of full-wave vector Maxwell equations, J OPT SOC B, 17(2), 2000, pp. 226-234
A numerical study of second-harmonic generation based on direct solutions o
f full-wave vector Maxwell equations, conducted by use of a finite-differen
ce time-domain scheme, is reported. Although nonlinear problems have alread
y been solved by finite-difference time-domain schemes, this is the first f
inite-difference time-domain computation of second-harmonic generation in a
nonlinear crystal with a complete description of the electric field. Only
spatially plane waves are considered, but the three components of the elect
ric held are taken into account. The advantages and the drawbacks of this n
ew approach are shown: On the one hand, all the spectral components of the
waves are computed, but, on the other, the phase mismatch, which is imposed
rather than computed, requires the use of a fine temporal mesh. The numeri
cal results obtained for second-harmonic generation of femtosecond pulses i
n a thin KDP crystal are compared with those obtained by solution of the no
nlinear Schrodinger equations. They illustrate the advantages of this metho
d. (C) 2000 Optical Society of America [S0740-3224(00)00201-0].