Phase correction of laser radiation with the use of adaptive optical systems at the Russian Federal Nuclear Center—Institute of Experimental Physics

2012 ◽  
Vol 48 (2) ◽  
pp. 134-140 ◽  
Author(s):  
S. G. Garanin ◽  
A. N. Manachinsky ◽  
F. A. Starikov ◽  
S. V. Khokhlov
2021 ◽  
pp. 8-29
Author(s):  
Abilhan Umbetovich Umbetov ◽  
Makhabbat Zhaksylykovna Umbetova ◽  
Gabit Mukhitovich Abildayev ◽  
Saule Svyazkhanovna Baizakova ◽  
Samal Arynovna Zhamalova ◽  
...  

Author(s):  
Pavel N. Vasilevsky ◽  
Mikhail S. Savelyev ◽  
Sergey A. Tereshchenko ◽  
Sergey V. Selishchev ◽  
Alexander Yu. Gerasimenko

The constant increase in the power of laser systems and the growth of potential fields for the application of lasers make the problem of protecting sensitive elements of electro-optical systems and visual organs from high-intensity radiation an urgent issue. Modern systems are capable of generating laser radiation in a wide range of wavelengths, durations, and pulse repetition rates. High-quality protection requires the use of a universal limiter capable of attenuating laser radiation, not causing colour distortion, and having a high transmission value when exposed to low-power radiation. For this, dispersed media based on carbon nanotubes with unique physicochemical properties can be used. Such media have constant valuesof their absorption coefficient and refractive index when exposed to low-intensity laser radiation and change their properties only when the threshold value is reached.The aim of this work was the study of the nonlinear optical properties of an aqueous dispersion of single-walled carbon nanotubes exposed to nano- and femtosecond radiation. For the characterization of the studied medium, Z-scan and fixed sample location experiments were used. The optical parameters were calculated using a threshold model based on the radiation transfer equation.As a result of the experiments, it was shown that the aqueous dispersion of single-walled carbon nanotubes is capable of limiting radiation with wavelengths from the visible and near-IR ranges: nano- (532, 1064 nm) and femtosecond (810 nm). A description of nonlinear optical effects was proposed for when a medium is exposed to radiation with a nanosecond duration due to reverse saturable absorption and two-photon absorption. When the sample exposed for a femtosecond duration the main limiting effect is spatial self-phase modulation. The calculated optical parameters can be used to describe the behaviour of dispersions of carbon nanotubes when exposed to radiation with different intensities. The demonstrated effects allow us to conclude that it is promising to use the investigated media as limiters of high-intensity laser radiationin optical systems to protect light-sensitive elements.


2012 ◽  
Vol 82 ◽  
pp. 75-84 ◽  
Author(s):  
Sergey Garanin ◽  
Sergey Khokhlov ◽  
Aleksei Manachinsky ◽  
Fedor Starikov

We report the results of performance of closed-loop adaptive optical systems intended for phase correction of pulsed and cw laser beams. The conventional control of adaptive system is based on wavefront sensing (e.g., Hartmann-Shack) and following deformation of adaptive mirror surface. We demonstrate the results of such static phase correction in the cases of the vortex laser beam and the powerful laser beam of pulsed “Luch” facility. On other side, applying the sensor-less approach we perform the dynamic phase correction of tip-tilts and higher phase aberrations of laser beams using the stochastic parallel gradient algorithm embedded into the special control units with microcontroller that considerably broadens the system operation bandwidth.


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