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Dive into the research topics where V. K. Prokopenko is active.

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Featured researches published by V. K. Prokopenko.


Physics of the Solid State | 2012

Imperfection of the clustered perovskite structure, phase transitions, and magnetoresistive properties of ceramic La0.6Sr0.2Mn1.2 − xNixO3 ± δ (x = 0–0.3)

A. V. Pashchenko; V. P. Pashchenko; V. K. Prokopenko; A. G. Sil’cheva; Yu. F. Revenko; A. A. Shemyakov; N. G. Kisel; V. P. Komarov; V. Ya. Sycheva; S. V. Gorban; V. G. Pogrebnyak

Ceramic samples of lanthanum strontium manganite perovskites La0.6Sr0.2Mn1.2 − xNixO3 ± δ (0 ≤ x ≤ 0.3) have been investigated using the X-ray diffraction, magnetic (χac), 55Mn NMR, resistive, and magnetoresistive methods. The specific features of the influence of the composition on the structure and properties of nonstoichiometric manganite perovskites have been established. It has been found that the rhombohedrally (R


Physics of the Solid State | 2009

Imperfection of the nanostructure, phase transitions, 55Mn NMR, and magnetoresistive properties of La0.73+Ca0.3 − x2+Srx2+MnO3 ± δ ceramics

A. V. Pashchenko; A. A. Shemyakov; V. P. Pashchenko; V. A. Turchenko; V. K. Prokopenko; Yu. F. Revenko; Yu. V. Medvedev; B. M. Éfros; G. G. Levchenko


Physics of the Solid State | 2008

Influence of cobalt on the structural and magnetic Inhomogeneities, phase transitions, and magnetoresistive properties of La0.6Sr0.2Mn1.2 − x Co x O3 ± δ

A. V. Pashchenko; V. P. Pashchenko; A. A. Shemyakov; N. G. Kisel; V. K. Prokopenko; Yu. F. Revenko; A. G. Sil’cheva; V. P. Dyakonov; H. Szymczak

\bar 3


Low Temperature Physics | 2007

Structural imperfections and magnetoresistive properties of the ceramic La0.6Sr0.2Mn1,2−xFexO3±δ

V. P. Pashchenko; A. A. Shemyakov; A. V. Pashchenko; V. K. Prokopenko; Yu. F. Revenko; V. A. Turchenko; V. N. Varyukhin; V. P. D’yakonov; H. Szymczak


Technical Physics | 2012

Effect of hyperstoichiometric manganese on the structure and transport, magnetic, and magnetoresistance properties of manganite-lanthanum (La0.7Ca0.3)1 − xMn1 + xO3 perovskites

V. P. Pashchenko; A. V. Pashchenko; V. K. Prokopenko; Yu. F. Revenko; A. A. Shemyakov; A. G. Sil’cheva

c) distorted perovskite structure contains cation and anion vacancies, as well as nanostructured clusters with Mn2+ ions in the A-positions. The substitution of Ni3+ ions (r = 0.74 Å) for Mn3+ ions (r = 0.785 Å) leads to a decrease in the lattice parameter a, the ferromagnetic-paramagnetic phase transition temperature TC, and the metal-semiconductor phase transition temperature Tms due to the disturbance of the superexchange interactions between heterovalent manganese ions Mn3+ and Mn4+. The observed anomalous magnetic hysteresis at 77 K has been explained by the antiferromagnetic effect of the unidirectional exchange anisotropy of the ferromagnetic matrix structure on the magnetic moments of the superstoichiometric manganese Mn2+ ions located in nanostructured planar clusters. An analysis of the asymmetrically broadened 55Mn NMR spectra of the compounds has revealed a high-frequency electronic superexchange of the ions Mn3+ ⟷ O2− ⟷ Mn4+; a local heterogeneity of their surrounding by other ions, vacancies, and clusters; and a partial localization of Mn4+ ions. The local hyperfine interaction fields on 55Mn nuclei have been determined. The concentration dependences of the activation energy and charge hopping frequency have confirmed that the Ni ions decrease the electrical conductivity due to the weakening of the electronic superexchange Mn3+ ⟷ O2− ⟷ Mn4+. Two types of magnetoresistive effects have been found: one effect, which is observed near the phase transition temperatures TC and Tms, is caused by scattering at intracrystalline nanostructured heterogeneities, and the other effect, which is observed in the low-temperature range, is induced by tunneling through intercrystalline mesostructured boundaries. The phase diagram has demonstrated that there is a strong correlation between magnetic and electrical properties in rare-earth manganites.


Physics of the Solid State | 2011

Structure, phase transitions, 55Mn NMR, and magnetoresistive properties of La0.6Sr0.2Mn1.2 − yCryO3 ± δ

A. V. Pashchenko; V. P. Pashchenko; A. G. Sil’cheva; V. K. Prokopenko; A. A. Shemyakov; Yu. F. Revenko; V. P. Komarov; S. V. Gorban

Magnetoresistive ceramic samples La0.7Ca0.3 − xSrxMnO3 ± δ sintered at temperatures of 1150 and 1350°C are investigated using X-ray diffraction, microscopic, resistance, and magnetic (χ, 55Mn NMR) measurements. The specific features of the influence of the composition on the type and parameters of the perovskite structure, its imperfection, the porous crystallite structure, the metal-semiconductor and ferromagnetic-paramagnetic phase transitions, the 55Mn NMR spectra, and the magnetoresistance effect are established. The magnetic phase diagram is constructed. The conclusions are drawn regarding the nonuniformity of the distribution of ions and vacancies around manganese involved in the high-frequency electron-hole exchange (Mn3+ ai Mn4+) and the nanostructured separation of the perovskite structure containing anion and cation vacancies, with the concentrations and magnetoresistance effect decreasing and the lattice parameters and phase transition temperatures increasing as calcium is replaced by strontium.


Physics of the Solid State | 2014

Structural and magnetic inhomogeneities, phase transitions, 55Mn nuclear magnetic resonance, and magnetoresistive properties of La0.6 − xNdxSr0.3Mn1.1O3-δ ceramics

A. V. Pashchenko; V. P. Pashchenko; V. K. Prokopenko; Yu. F. Revenko; N. G. Kisel; V. I. Kamenev; A. G. Sil’cheva; N. A. Ledenev; V. V. Burkhovetskii; G. G. Levchenko

AbstractThe structure and properties of magnetoresistive ceramics La0.6Sr0.2Mn1.2 − xCoxO3 ± δ (x = 0−0.3) sintered at a temperature of 1200°C are investigated using x-ray diffraction, resistance, and magnetic (χac, M, 55Mn NMR) measurements. It is shown that the samples contain the rhombohedral (R


Physics of the Solid State | 2013

Structural and magnetic heterogeneities, phase transitions, 55Mn NMR, and magnetoresistive properties of La0.6Sr0.3 − xBixMn1.1O3

A. V. Pashchenko; V. P. Pashchenko; Yu. F. Revenko; V. K. Prokopenko; A. S. Mazur; V. A. Turchenko; V. V. Burkhovetskii; A. G. Sil’cheva; P. P. Konstantinov; Yu. M. Gufan


Journal of Experimental and Theoretical Physics | 2017

Role of structure imperfection in the formation of the magnetotransport properties of rare-earth manganites with a perovskite structure

A. V. Pashchenko; V. P. Pashchenko; V. K. Prokopenko; V. A. Turchenko; Yu. F. Revenko; A. S. Mazur; V. Ya. Sycheva; N. A. Liedienov; V.G. Pitsyuga; G. G. Levchenko

\bar 3


Physics of the Solid State | 2013

Structural and magnetic inhomogeneity, phase transitions, magnetoresonance and magnetoresistive properties of La0.6 − xPrxSr0.3Mn1.1O3 (x = 0–0.6)

A. V. Pashchenko; V. P. Pashchenko; V. K. Prokopenko; Yu. F. Revenko; A. S. Mazur; V. A. Turchenko; V. Ya. Sycheva; V. V. Burkhovetskii; A. G. Sil’cheva; G. G. Levchenko

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A. V. Pashchenko

National Academy of Sciences of Ukraine

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V. P. Pashchenko

National Academy of Sciences of Ukraine

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Yu. F. Revenko

National Academy of Sciences of Ukraine

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G. G. Levchenko

National Academy of Sciences of Ukraine

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A. A. Shemyakov

National Academy of Sciences of Ukraine

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N. A. Liedienov

National Academy of Sciences of Ukraine

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V. Ya. Sycheva

National Academy of Sciences of Ukraine

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V. A. Turchenko

Joint Institute for Nuclear Research

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A. S. Mazur

Saint Petersburg State University

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