The Physical–Chemical Model
of Nanoscaled Metal Component
Formation on the Surface of Graphite
Supporter
Luidmila Yu. Matzui, Iryna V. Ovsiienko, Luidmila L. Vovchenko,
Tatiana L. Tsaregradskaya, Galina V. Saenko, Oleg D. Marinin,
and Nataliia B. Bielousova
1 Introduction
Research on nanocomposite materials is the aim of new branches of science that are
developing rapidly. The use of a chemical modification of the surface of a graphite
support for the transfer of metals or their compounds to the nanocrystalline state
seems very promising [1]. For the further development of the synthesis of nanocomposite materials with a given set of structural, physical, and chemical properties, it is
necessary to create a theoretical justification for describing the basic mechanisms of
the formation of metal components on the surface of structurally different graphite.
Investigations showed the formation of nanoscaled component on the surface of
graphite supporter to be the multistage process, each stage of it being determined by
a variety of factors [2].
The use of the thermodynamic method allows you to create a physical-chemical
model of the formation of nanoscale metal components on the surface of a graphite
carrier [3]. That is why the aim of the current research was the creation of a physicalchemical model model of nanoscaled metal component formation on the surface
of graphite supporter. Finding the correlation between structural peculiarities of the
L. Yu. Matzui · I. V. Ovsiienko · L. L. Vovchenko · T. L. Tsaregradskaya · G. V. Saenko (B) ·
O. D. Marinin
Departments of Physics, Taras Shevchenko National University of Kyiv, Volodymyrska 64/13,
Kiev 01601, Ukraine
e-mail: g_saenko@ukr.net
L. Yu. Matzui
e-mail: tsar_grd@ukr.net
N. B. Bielousova
Departments of International Information, Taras Shevchenko National University of Kyiv,
Volodymyrska 64/13, Kiev 01601, Ukraine
© Springer Nature Switzerland AG 2021
O. Fesenko and L. Yatsenko (eds.), Nanomaterials and Nanocomposites,
Nanostructure Surfaces, and Their Applications, Springer Proceedings
in Physics 246, https://doi.org/10.1007/978-3-030-51905-6_21
265
of Nanoscaled Metal Component
Formation on the Surface of Graphite
Supporter
Luidmila Yu. Matzui, Iryna V. Ovsiienko, Luidmila L. Vovchenko,
Tatiana L. Tsaregradskaya, Galina V. Saenko, Oleg D. Marinin,
and Nataliia B. Bielousova
1 Introduction
Research on nanocomposite materials is the aim of new branches of science that are
developing rapidly. The use of a chemical modification of the surface of a graphite
support for the transfer of metals or their compounds to the nanocrystalline state
seems very promising [1]. For the further development of the synthesis of nanocomposite materials with a given set of structural, physical, and chemical properties, it is
necessary to create a theoretical justification for describing the basic mechanisms of
the formation of metal components on the surface of structurally different graphite.
Investigations showed the formation of nanoscaled component on the surface of
graphite supporter to be the multistage process, each stage of it being determined by
a variety of factors [2].
The use of the thermodynamic method allows you to create a physical-chemical
model of the formation of nanoscale metal components on the surface of a graphite
carrier [3]. That is why the aim of the current research was the creation of a physicalchemical model model of nanoscaled metal component formation on the surface
of graphite supporter. Finding the correlation between structural peculiarities of the
L. Yu. Matzui · I. V. Ovsiienko · L. L. Vovchenko · T. L. Tsaregradskaya · G. V. Saenko (B) ·
O. D. Marinin
Departments of Physics, Taras Shevchenko National University of Kyiv, Volodymyrska 64/13,
Kiev 01601, Ukraine
e-mail: g_saenko@ukr.net
L. Yu. Matzui
e-mail: tsar_grd@ukr.net
N. B. Bielousova
Departments of International Information, Taras Shevchenko National University of Kyiv,
Volodymyrska 64/13, Kiev 01601, Ukraine
© Springer Nature Switzerland AG 2021
O. Fesenko and L. Yatsenko (eds.), Nanomaterials and Nanocomposites,
Nanostructure Surfaces, and Their Applications, Springer Proceedings
in Physics 246, https://doi.org/10.1007/978-3-030-51905-6_21
265
