Collaboration with JINR as Key for Nuclear Physics Development in Ukraine

Authors

  • B.V. Gryniov
  • L.A. Bulavin
  • D.V. Soloviov
  • P.O. Stadnyk

DOI:

https://doi.org/10.15407/scin16.06.073

Keywords:

cooperation, nuclear physics, research

Abstract

Introduction. Today, the Joint Institute for Nuclear Research (JINR) is a kind of scientific and technical framework for Ukrainian nuclear researchers who are directly involved in conducting the cutting-edge nuclear physics experiments.
Problem Statement. An important aspect of international cooperation for the Ukrainian researchers in the field of nuclear physics and materials science is to consolidate scholarly research, engineering, and financial resources of countries for creating international research organizations and implementing large-scale projects in modern science and technology.
Purpose. Analysis of the factors that contribute to the development of nuclear physics and research in related disciplines in Ukraine, involvement of Ukrainian researchers in international research processes, and assessment of the future prospects.
Materials and Methods. Analysis of scholarly research trends in the Joint Institute for Nuclear Research (JINR) and review of achievements of Ukrainian researchers, in particular, young researchers, in implementation of international projects in nuclear physics and related disciplines.
Results. The background of nuclear physics research in Ukraine, the way of international cooperation development, and its impact on education and training of researchers have been analyzed. The examples of research results of Ukrainian nuclear physicists have been given. The cooperation of Ukrainian R&D organizations and companies with JINR has been shown to have a positive effect on creative and innovative processes, including the development and study of new high-tech materials.
Conclusions. Collaboration with JINR gives Ukrainian researchers access to modern methods of physical research and unique equipment at leading international R&D centers, while planning and implementing large-scale experiments in nuclear physics, and enables studying the problems of the Universe. Teachers, students, and schoolchildren from Ukraine have additional opportunities to work with the cutting-edge methods, modern equipment and innovative approaches in the field of science and technology.

References

Obreimov, I. V. (1971). History of natural science thought for half a century. Newsletter of the Academy of Sciences of the Ukrainian RSR. 10 [in Ukrainian].

Leipunskiy, A. I. (1990). Selected works. Memories (Ed. B.F. Gromova). Kyiv. P. 133 [in Russian].

50 years of modern nuclear physics. Moscow, 1982. P. 255 [in Russian].

Ranjuk Yu. (2001) Laboratory №1. Nuclear physics in Ukraine. Kharkiv. P. 588. [in Ukrainian].

CERN. URL: ru.wikipedia.org/wiki/ZERN (Last accessed: 15.04.2020). [in Russian].

Grinyov B.V., Titov M.P., Stadnyk P.O. (2019). Ukraine - CERN: cooperation way. Nauka innov., 5, 93-105 [in Ukrainian]. https://doi.org/10.15407/scin15.05.093

JINR. URL: jinr.ru/about/ (Last accessed: 15.04.2020) [in Russian].

JINR foundation history.

URL: jinr.ru/wp-content/uploads/JINR_Docs/Booklet_2015-rus.pdf

Trubnikov G. The technological level of many Ukrainian enterprises is the highest by world standards. URL: https://ltu.ua/ru/news/technological_level/ (Last accessed: 17.04.2020) [in Russian].

Grinyov B.V., Volkova Yu.G. (2015). Ukraine and Joint Institute for Nuclear Research: experience and prospects for cooperation. Nauka innov., 11(4), 55-61. ) [in Russian]. https://doi.org/10.15407/scin11.04.055

Artikov A., Budagov Ju., Grinyov B., Zhmurin P. (2013). JINR detectors based on Ukrainian plastic scintillators in TeV energy experiments. Kharkov. P. 86 [in Russian].

Olshevskiy A.G. JINR - Ukraine. URL: jinr.ru/posts/map_maps/ukraina/ (Last accessed: 17.04.2020) [in Russian].

JINR university center. URL: newuc.jinr.ru (Last accessed: 17.04.2020) [in Russian].

JINR education program. URL: ucnew.jinr.ru/ru/about (Last accessed: 17.04.2020) [in Russian].

Bulavin, L. A., Avdeev, М. V., Klyuchnikov, О. О., Nagornyy, А. V., Petrenko, V. І. (2015). Neutronography of magnetic fluid systems. Kyiv. P. 244 [in Ukrainian].

Zhernenkov, M., Bolmatov, D., Soloviov, D., Zhernenkov, K., Toperverg, B., Cunsolo, A., Bosak, A., Cai, Y. Q. (2016). Revealing the mechanism of passive transport in lipid bilayers via phonon-mediated nanometre-scale density fluctuations. Nature Communications, 7, 11575.

https://doi.org/10.1038/ncomms11575

Soloviov, D., Cai, Y. Q., Bolmatov, D., Suvorov, A., Zhernenkov, K., Zav'yalov, D., Bosak, A., Uchiyama, H., Zhernenkov, M. (2020). Functional lipid pairs as building blocks of phase-separated membranes. Proceedings of the National Academy of Sciences, 117(9), 4749-4757. https://doi.org/10.1073/pnas.1919264117

Avdeev, M. V., Rulev, A. A., Ushakova, E. E., Kosiachkin, Ye. N., Petrenko, V. I., Gapon, I. V., Kataev, E. Yu., Matveev, V. A., Yashina, L. V., Itkis, D. M. (2019). On nanoscale structure of planar electrochemical interfaces metal/liquid lithium ion electrolyte by neutron reflectometry. Applied Surface Science, 486, 287-291. https://doi.org/10.1016/j.apsusc.2019.04.241

Turchenko, V. A., Balagurov, A. M., Trukhanov, S. V., Trukhanov, A. V. Refinement of the Atomic and Magnetic Structures of Solid Solutions BaFe12 -x Inx O19 (x = 0.1-1.2) by the Neutron Diffraction Method (2019). Journal of Surface Investigation: X-ray, Synchrotron and Neutron Techniques, 13(1), 69-81. https://doi.org/10.1016/j.jmmm.2018.12.096

Turchenko, V., Kalanda, N., Yarmolich, M., Balasoiu, M., Lupu, N. (2019). Features of crystalline and magnetic structure of barium ferromolybdate in a wide temperature range. Journal of Magnetism and Magnetic Materials, 477, 42-48. https://doi.org/10.1016/j.jmmm.2018.12.096

Rajnak, M., Timko, M., Kopcansky, P., Paulovicova, K., Tothova, J., Kurimsky, J., Dolnik, B., Cimbala, R., Avdeev, M. V., Petrenko, V. I., Feoktystov, А. (2017). Structure and viscosity of a transformer oil-based ferrofluid under an external electric field. JMMM, 431, 99-102. https://doi.org/10.1016/j.jmmm.2016.10.008

Selyshchev, P. A., Petrenko, V. I., Rajnak, M., Dolnik, B., Kurimsky, J., Kopcansky, P., Timko, M., Bulavin, L. A. (2019). Non-uniformdistribution of ferrofluids spherical particles under external electric field: Theoretical description. Journal Mol. Liq., 278, 491-495. https://doi.org/10.1016/j.molliq.2019.01.001

Published

2024-07-16

Issue

Section

The World of Innovations