Phase Conjugate Laser Optics

Chapter 9 - Spatial and Spectral Control of High-Power Diode Lasers Using Phase Conjugate Mirrors

PAUL M. PETERSEN, MARTIN LØBEL, and SUSSIE JUUL JENSEN
Optics and Fluid Dynamics Department, Risø National Laboratory,
DK-4000 Roskilde, Denmark

Laser diode arrays can produce impressive amounts of optical power, and they are
attractive for their compactness and simplicity of operation. Unfortunately, these
lasers tend to oscillate in multiple spatial and longitudinal modes, so their coherence
properties are rather poor. We have developed new techniques for improving the
temporal and spatial coherence of high-power diode lasers. Our techniques are based
on frequency-selective phase conjugate feedback. In contrast to most other reported
techniques for improving the coherence of high-power diode lasers, our techniques
simultaneously improve both spatial and spectral coherence and allow the laser
system to be operated far above its threshold.

In this chapter we show that optical phase conjugation leads to effective feedback
that permits precise control of spatial and temporal coherence. We introduce the
concept of frequency-selective phase conjugate feedback in two different feedback
configurations.

In one configuration, a high-finesse etalon is placed in the external cavity. The
etalon forces the high-power diode laser, which has low-spatial and temporal coherence
when running freely, to operate in a state with high temporal coherence and with the
far-field very close to the diffraction limit.

In the other configuration, a grating is inserted into the phase conjugate cavity. In
this case the laser also operates in a state of high spatial and temporal coherence, and
its output is tunable over a broad wavelength range. A 100-h stability test showed
that both the output power and the center wavelength are extremely stable.

Finally, we discuss how the use of phase conjugate feedback to improve the
coherence properties of high-power diode lasers may be extended to yield new high-
power blue laser sources using frequency doubling.

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