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Author: Medyanyk V.

  • Controlling wettability modes of the probes of the atomic-force microscope

    • Andriienko O.
    • Medyanyk V.
    • Bilokin S.
    • Bondarenko Yu.
    • Bondarenko M.
    • Antonyuk V.
    Machines. Technologies. Materials., Vol. 13 (2019), Issue 5, pg(s) 217-223
    • Abstract
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    It has been established that in the study of a solid surface by atomic force microscopy, the hydrophobic interaction is more advantageous due to a decrease in the interaction forces between the probe and the liquid adsorbed on the surface under study. Despite the fact that silicon is a hydrophobic material, it has been shown that the material acquires hydrophilic properties in air, as a result of which the use of carbon-modified probes has been proposed. An approach to experimental statistical modeling is proposed, based on the experiment planning method, which shows that with a scanning speed of 12 μm / s, a scanning step of up to 82 nm and a delay time before scanning of 6 ms, the interaction force between the probe and the adsorbed liquid reaches minimum values. As a result of the research, it was found that with a decrease in the scanning speed, a scanning step and an increase in the delay time of the probe before measurement, the interaction between the probe and the liquid membrane is hydrophobic. It is shown that by changing the initial parameters, it is possible to control the hydrophobic interaction between the probe and the liquid. It has been established that increased air humidity leads to hydrophilic interaction. This is due to the increase in the thickness of the adsorbed liquid layer on the surface under study.

  • Control of spatial characteristics of the ribbon-shaped electron stream in the process of processing optical coverings of optoelectronics products

    • Gaidash R.
    • Ralchenko S.
    • Medyanyk V.
    • Bondarenko M.
    Machines. Technologies. Materials., Vol. 12 (2018), Issue 10, pg(s) 398-401
    • Abstract
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    The paper develops a methodology for controlling the spatial characteristics of a ribbon-shaped electron stream by determining the width of the low-energy ribbon-shaped electron stream and its concentration coefficient as a function of the distance of the electron gun to the processing object and the subsequent highly effective adjustment of the electron-optical system of the electron gun with a ribbonshaped stream shape during processing of optical coatings of optoelectronics products. It is established that the dependence of the width of the electron stream and the coefficient of its concentration at different distances from the object are nonlinear. The possibility of controlling the electron stream by adjusting the specific power and the distance to the processed object directly during the processing is shown, which allows qualitatively improving the metrological indexes of the processed articles: increase the accuracy of processing by 3-5%, the convergence of the results – by 15-18%, and also increase the stability of the parameters of the electron stream 1,6-2,1 times.

  • INNOVATIVE SOLUTIONS

    THE INVESTIGATION OF THE NANORELIEFS OF OPTICAL ELEMENTS OF MEASURING INSTRUMENTS, WHICH MODIFIED BY ELECTRONBEAM MICROPROCESSING

    • Skoryna E.
    • Medyanyk V.
    • Bondarenko M.
    • Bondarenko I.
    • Bilokin S.
    • Antoniuk V.
    Innovations, Vol. 6 (2018), Issue 1, pg(s) 30-33
    • Abstract
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    •  Article PDF

    The results of microprocessing by the ribbon-shaped electron beam of the elements of optical measuring instruments (the material of such elements – K8 glass) with the initial nanorelief of surfaces 15-22 nm after industrial grinding and polishing are presented. Based on the results of studies using a computerized complex control system based on an atomic force microscope, it was established that after electron-beam microprocessing, the nanorelief of optical elements of measuring instruments decreased to 1.5-2.2 nm, satisfying to the requirements put forward to their surfaces.

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