filter (curve 2 figure 10) and on the output of
collinear AO cell with feedback (curve 3 figure 10),
for the curve 3 the parameters AO interaction
parameters were: Γ
g
= π/100, =5.5.
Curve 2 differs much from the curve 1. The
reason of this difference is that the conventional
collinear AO filter transmission function has side
lobes that let pass the undesirable spectral
components and cause the smoothing of diffracted
light spectrum peculiarities and significantly distort
its shape.
Thereby the real spectral resolution of the AO
filter is much lower than the filter transmission
function passband (approximately in 10 times).
If we use the AO system with feedback the high
spectral contrast gives the possibility to dispose the
side lobes and to let pass only the spectral
components that fit the passband. Consequently the
shape of curve 3 at figure 10 is much closer to the
shape of curve 1, except the spectrum contrast. The
growth of light spectrum contrast is caused by the
AO system nonlinearity, but this distortion could be
corrected using the dependences presented at figure
9 and calibrations.
5 CONCLUSIONS
In this paper, we have analyzed the functioning of
the optoelectronic system containing the collinear
AO filter and electronic feedback. This feedback is
implemented due to a special geometry of AO
interaction in the collinear cell, when light
diffraction by a traveling acoustic wave is
accompanied by light intensity modulation at the
acoustic frequency f. Due to this peculiarity, the
output signal of the photodetector contains the
component that could feed the cell transducer
together with the RF generator. The feedback action
results in narrowing the system spectral passband
and, consequently, increasing the accuracy of optical
wavelength measurement. The main advantage of
the examined system is that the shape of the filter
transmission function can be controlled through the
gain factor of the feedback amplifier. It can be used
for conversion of the optical spectrum into the
electrical one.
The system spectral resolution is limited by the
AO collinear filter passband without feedback.
The examined system may be considered as a
new type of spectrum analyzer but with taking into
consideration the feedback nonlinearity. This
nonlinearity can be taken into account at computer
processing of the output signal and calibrations.
ACKNOWLEDGEMENTS
The work has been supported by the Russian
Science Foundation (RSF), project 14-22-00042.
REFERENCES
A.P. Goutzoulis and D.R. Pape, 1994, Design and
Fabrication of Acousto-Optic Devices. M. Dekker,
Inc., N.Y.,
J. Chrostowski, C. Delisle, 1982, Bistable optical
switching based on Bragg diffraction, Opt. Commun.
41(2), 71-74.
T.-C. Poon, S.K. Cheung, 1989, Performance of a hybrid
bistable device using an acoustooptic modulator, Appl.
Opt. 28(22), 4787-91.
V.I. Balakshii, A.V. Kazar'yan, A.A. Lee, 1995,
Multistability in an acousto-optical system with a
frequency feedback, Quant. Electron. 25(10), 940-
945.
V.I. Balakshy, A.V. Kazaryan, 1999, Laser beam direction
stabilization by means of Bragg diffraction, Opt. Eng.
38(7), 1154-1159.
V.I. Balakshy, I.A. Nagaeva, 1996, Optoelectronic
generator based on the acousto-optical interaction,
Quant. Electron. 26(3), 254-258.
V.I. Balakshy, Yu.I. Kuznetsov, S.N. Mantsevich, N.V.
Polikarpova, 2014, Dynamic processes in an acousto-
optic laser beam intensity stabilization system, Optics
& Laser Techn. 62, 89-94
S.E. Harris, S.T.K. Nieh, R.S. Feigelson, 1970, CaMoO
4
electronically tunable optical filter, Appl. Phys. Lett.
17(5), 223-225.
V.I. Balakshy, S.N. Mantsevich, 2009, Influence of light
polarization on characteristics of a collinear
acoustooptic diffraction, Opt. & Spectr. 106(3), 441-
445.
V.I. Balakshy, S.N. Mantsevich, 2012, Polarization effects
at collinear acousto-optic interaction, Opt. & Laser
Techn. 44(4), 893-898.
Balakshy V.I., Kuznetsov Yu I., Mantsevich S.N., 2016,
Effect of optoelectronic feedback on the characteristics
of acousto-optical collinear filtering, Quant. Electron.,
46( 2), 181-184.
Mantsevich S.N., Balakshy V.I., Kuznetsov Yu I., 2016,
Effect of feedback loop on the resolution of acousto-
optic spectrometer, Phys. of Wave Phen. 24(2), 135-
141.
M.M. Mazur, V.N. Shorin, A.Yu. Abramov, Z.A.
Magometov, and L.I. Mazur, 1996, Spectrometer with
double acousto-optical monochromator, Opt. &
Spectr. 81, 475-477.
S.N. Mantsevich, V.I. Balakshy, Molchanov V.Ya.,
Yushkov K.B., 2015, Influence of acoustic anisotropy
in paratellurite on quasicollinear acousto-optic
interaction, Ultrason., 63, 39-46.