K. B. Kuznetsov
Russian Academy of Sciences
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Featured researches published by K. B. Kuznetsov.
Inorganic Materials | 2015
K. B. Kuznetsov; K. A. Shashkeev; S. V. Shevtsov; A. I. Ogarkov; N. N. Tretyakov; M. P. Saprina; A. Kostyuchenko; A. S. Chernyavskii; V. M. Ievlev; K. A. Solntsev
We have studied the structure and microstructure of ZrN prepared by high-temperature nitridation of zirconium foil and estimated its hardness. The results demonstrate the feasibility of producing a composite heterostructure with the composition ZrN-(α-solid solution of nitrogen in zirconium/ZrN)-ZrN in the conditions of the process under consideration by heating to a temperature above the peritectic reaction temperature.
Inorganic Materials | 2016
K. B. Kuznetsov; I. A. Kovalev; A. N. Nechaev; A. I. Ogarkov; S. V. Shevtsov; A. S. Chernyavskii; K. A. Solntsev
X-ray diffraction and transmission electron microscopy (TEM) data demonstrate that irradiation with high-energy +24Xe136 ions causes no changes in the grain microstructure of compact zirconium nitride ceramics. According to Raman spectroscopy and high-resolution TEM data, the irradiated ceramics may have local distortions of the zirconium nitride lattice within regions on the order of the lattice parameter in size.
Inorganic Materials: Applied Research | 2010
K. B. Kuznetsov; L. I. Shvorneva; K. A. Solntsev
The technique of synthesis of monolithic samples of zirconium and hafnium nitrides by oxidative construction of thin-walled ceramics is described; the X-ray phase investigation into the obtained material is presented. It is shown that the phase composition of the surface is inhomogeneous along the length of the sample, where regions characterized by an individual and particular set of phase states can be distinguished.
Inorganic Materials | 2016
A. I. Ogarkov; S. V. Shevtsov; K. B. Kuznetsov; I. A. Kovalev; A. S. Chernyavskii; K. A. Solntsev
We have identified structural and morphological changes produced by irradiation with 167-MeV +24Xe136 ions to a fluence of 5.3 × 1014 cm–2 in Ti, Zr, and Hf nitrides prepared using oxidation-assisted engineering. Irradiation of TiNx and HfNx leads to the formation of nano- and micropores in the surface layer of the samples. The surface layer of ZrNx samples contains nanopores both before and after irradiation. The presence of pores in the unirradiated ZrNx samples probably ensures the possibility of structural relaxation without further pore formation under irradiation. The irradiated ZrNx samples have local crystal structure distortions unrelated to dislocations and attributable to the impact of high-energy xenon ions.
Inorganic Materials | 2016
I. A. Kovalev; K. B. Kuznetsov; V. Yu. Zufman; A. I. Ogarkov; S. V. Shevtsov; S. V. Kannykin; A. S. Chernyavskii; K. A. Solntsev
Titanium samples 60.0 mm in length and 3.0 × 0.3 mm in cross section were heated in a nitrogen gas atmosphere for 60 min at temperatures from 1300 to 2100°C. At temperatures below 2000°C, the titanium nitridation process comprised two stages. The lower temperature limit of exponential nitridation kinetics was determined to be ~1000°C. At temperatures above the melting point of the metal, the presence of liquid phase in the bulk of the material has no significant effect on the titanium nitridation process.
Inorganic Materials | 2009
K. B. Kuznetsov; L. I. Shvorneva; A. S. Chernyavskiy; K. A. Solntsev
A method of synthesizing titanium nitride monolithic samples is described and the results of roentgen- phase investigation of the obtained material are presented. It is shown that, during nitridation, the sample surface composition changes and each stage of the process is characterized by an individual and specific set of phase states.
Inorganic Materials: Applied Research | 2017
V. Yu. Zufman; S. V. Shevtsov; A. I. Ogarkov; I. A. Kovalev; K. B. Kuznetsov; A. A. Ashmarin; N. A. Ovsyannikov; N. N. Dergunova; S. K. Rodionova; A. S. Chernyavskii; K. A. Solntsev
The kinetics and structural-phase behavior of the high-temperature oxidation of nickel are considered. It is found that the kinetics of high-temperature oxidation of nickel using the oxidative constructing approach is described by a parabolic law. The resulting compact bunsenite ceramic has a high adhesion to the metal surface. The presence of a gradient penetration of oxide inclusions in the porous structure of metal leads to a blurring of the phase boundary. It is shown that the limiting stage of the nickel oxidation process in the range of 1250–1400°С is nickel oxide dissociation with formation of free ions.
Inorganic Materials: Applied Research | 2017
V. Yu. Zufman; S. V. Shevtsov; A. I. Ogarkov; I. A. Kovalev; K. B. Kuznetsov; A. A. Ashmarin; N. A. Ovsyannikov; N. N. Dergunova; S. K. Rodionova; A. S. Chernyavskii; K. A. Solntsev
High temperature iron oxidation within the oxidative development approach was carried out. It was found that, in the temperature range of 750–850°C, the kinetics of the iron oxidation with the use of the oxidative development approach was described by a parabolic law. The formed compact oxide ceramic has a uniform thickness which reaches 7 mm at 850°C within 14 days. It was found that, with the increase in volume of the initial metallic sample, the rate of the high temperature iron oxidation decreased. The ceramic obtained within 14 days at 850°C was characterized by a laminated structure.
Inorganic Materials | 2017
K. B. Kuznetsov; I. A. Kovalev; A. I. Ogarkov; S. V. Shevtsov; S. V. Kannykin; A. S. Chernyavskii; K. A. Solntsev
The high-temperature hafnium nitridation process, with HfNx formation, comprises two stages. With increasing nitridation temperature and time, the lattice parameter of the nitride decreases. The observed discrete nucleation of nitride microcrystals on the surface is a consequence of metal diffusion through an amorphous carboxynitride. No structural defects were detected by high-resolution transmission electron microscopy in selected areas.
Russian Journal of Inorganic Chemistry | 2016
S. V. Shevtsov; A. I. Ogarkov; I. A. Kovalev; K. B. Kuznetsov; D. V. Prosvirnin; A. A. Ashmarin; A. S. Chernyavskii; K. A. Solntsev
Resistive heating of zirconium in a gaseous nitrogen atmosphere yields ceramics based on zirconium nitride with a heterophase structure. X-ray powder diffraction analysis determined the compositions of phases of the synthesized ceramics. The surface of the material consists of zirconium nitride close in composition to ZrN. In the bulk of the materials, in shallower layers, a nitrogen-deficient nitride phase forms, and in deeper layers, a phase of solid solution of nitrogen in zirconium does. The hardness of ceramics based on heterostructures of the type Zrsolid solution/ZrN1–x/ZrN was studied. Changes in the structure and phase composition during high-temperature nitriding of zirconium foil at 1500 and 2400°C were described.