Phase Conjugate Laser Optics

Chapter 11 - Self-Adaptive Loop Resonators with Gain Gratings

MICHAEL J. DAMZEN
The Blackett Laboratory, Imperial College, London SW7 2BW, United Kingdom

An overview is made of the use of dynamic gain gratings formed in an
amplifying laser medium for optical wave-mixing, phase conjugation, and
formation of self-adaptive loop resonators. Effects demonstrated in laser media
include four-wave mixing (FWM), self-pumped phase conjugation (SPPC), and
double phase conjugation (DPC). Application of gain gratings is presented for
formation of novel self-adaptive solid-state laser systems with spatial, spectral,
and temporal control of high-power radiation.


11.1   INTRODUCTION


The aim of this chapter is to give an overview of some of the key physics of gain-
grating theory of nonlinear optical beam interaction by multiwave mixing in gain
media and illustrate its application for spatial, spectral, and temporal control of laser
radiation [1–3]. Some of the gain-grating effects demonstrated in laser amplifying
media include phase conjugation by four-wave mixing [4–7], self-pumped phase
conjugation [8–10], double phase conjugation [11, 12], and self-adaptive laser
oscillators that can self-organize without any external optical input [13–15]. Most
experiments have been conducted in pulsed laser systems where the gain is
high [1–31]. More recently, continuous-wave operation has also been demonstrated
[32] including continuous-wave diode-pumped solid-state operation [33, 34].
Nonlinear optics normally involves a nonlinear change in the polarization P of
a material due to the presence of optical radiation field E. As with other nonlinear
phenomena, to quantify the interaction of light field E with a resonant saturable
gain material involves use of Maxwell’s wave equation:

 

 

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