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Publications in Math-Net.Ru |
Citations |
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2021 |
1. |
S. V. Semenov, D. M. Gokhfeld, K. Yu. Terent'ev, D. A. Balaev, “Mechanisms of the magnetoresistance hysteresis in a granular HTS with the paramagnetic contribution by the example of HoBa$_{2}$Cu$_{3}$O$_{7-\delta}$”, Fizika Tverdogo Tela, 63:10 (2021), 1462–1470 ; Phys. Solid State, 63:12 (2021), 1785–1794 |
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2. |
S. V. Semenov, D. A. Balaev, M. I. Petrov, “Universal behavior and temperature evolution of the magnetoresistance hysteresis in granular high-temperature superconductors Y-Ba-Cu-O”, Fizika Tverdogo Tela, 63:7 (2021), 854–865 ; Phys. Solid State, 63:7 (2021), 1069–1080 |
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3. |
Dmitry A. Balaev, Sergei V. Semenov, Sergei N. Varnakov, Evgeniy Yu. Radionov, Yaroslav Al. Tretyakov, “High-temperature evolution of the magnetization of aluminum reduction cell steel”, J. Sib. Fed. Univ. Math. Phys., 14:1 (2021), 5–11 |
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2020 |
4. |
S. I. Popkov, A. A. Krasikov, S. V. Semenov, A. A. Doubrovskii, S. S. Yakushkin, V. L. Kirillov, O. N. Mart'yanov, D. A. Balaev, “General regularities and differences in the behavior of the dynamic magnetization switching of ferrimagnetic (CoFe$_2$O$_4$) and antiferromagnetic (NiO) nanoparticles”, Fizika Tverdogo Tela, 62:9 (2020), 1354–1360 ; Phys. Solid State, 62:9 (2020), 1518–1524 |
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5. |
S. V. Semenov, D. A. Balaev, “Model of the behavior of a granular HTS in an external magnetic field: temperature evolution of the magnetoresistance hysteresis”, Fizika Tverdogo Tela, 62:7 (2020), 1008–1016 ; Phys. Solid State, 62:7 (2020), 1136–1144 |
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6. |
S. I. Popkov, A. A. Krasikov, S. V. Semenov, A. A. Doubrovskii, S. S. Yakushkin, V. L. Kirillov, O. N. Mart'yanov, D. A. Balaev, “Features of the pulsed magnetization switching in a high-coercivity material based on $\varepsilon$-Fe$_{2}$O$_{3}$ nanoparticles”, Fizika Tverdogo Tela, 62:3 (2020), 395–402 ; Phys. Solid State, 62:3 (2020), 445–453 |
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7. |
D. A. Balaev, S. V. Semenov, A. A. Doubrovskii, A. A. Krasikov, S. I. Popkov, S. S. Yakushkin, V. L. Kirillov, O. N. Mart'yanov, “Synthesis and magnetic properties of the core–shell Fe$_{3}$O$_{4}$/CoFe$_{2}$O$_{4}$ nanoparticles”, Fizika Tverdogo Tela, 62:2 (2020), 235–240 ; Phys. Solid State, 62:2 (2020), 285–290 |
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2019 |
8. |
Yu. V. Knyazev, A. I. Chumakov, A. A. Doubrovskiy, S. V. Semenov, S. S. Yakushkin, V. L. Kirillov, O. N. Martyanov, D. A. Balaev, “Mössbauer study of the magnetic transition in $\epsilon$-Fe$_2$O$_3$ nanoparticles using synchrotron and radionuclide sources”, Pis'ma v Zh. Èksper. Teoret. Fiz., 110:9 (2019), 614–619 ; JETP Letters, 110:9 (2019), 613–617 |
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2018 |
9. |
N. S. Pavlovskii, A. A. Doubrovskii, S. E. Nikitin, S. V. Semenov, K. Yu. Terent'ev, K. A. Shaykhutdinov, “Magnetostriction of hexagonal HoMnO$_{3}$ and YMnO$_{3}$ single crystals”, Fizika Tverdogo Tela, 60:3 (2018), 515–520 ; Phys. Solid State, 60:3 (2018), 520–526 |
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10. |
A. L. Freydman, S. I. Popkov, S. V. Semenov, P. P. Turchin, “A capacitive dilatometer for measuring the magnetostriction, piezoelectric effect, and linear thermal-expansion coefficient”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 44:3 (2018), 79–86 ; Tech. Phys. Lett., 44:2 (2018), 123–125 |
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2017 |
11. |
S. V. Semenov, D. A. Balaev, M. A. Pochekutov, D. A. Velikanov, “Anisotropy of the magnetoresistive properties of granular high-temperature superconductors resulting from magnetic flux compression in the intergrain medium”, Fizika Tverdogo Tela, 59:7 (2017), 1267–1273 ; Phys. Solid State, 59:7 (2017), 1291–1297 |
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12. |
Sergey V. Semenov, Dmitry A. Balaev, Kirill A. Shaykhutdinov, Denis Yu. Rogozin, “Day plots of bacterial magnetite from sediments of Shira lake (Khakassia, Russia)”, J. Sib. Fed. Univ. Math. Phys., 10:2 (2017), 252–256 |
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2016 |
13. |
D. A. Balaev, A. A. Krasikov, A. A. Doubrovskii, S. V. Semenov, S. I. Popkov, S. V. Stolyar, R. S. Iskhakov, V. P. Ladygina, R. N. Yaroslavtsev, “Specific features of magnetic properties of ferrihydrite nanoparticles of bacterial origin: A shift of the hysteresis loop”, Fizika Tverdogo Tela, 58:2 (2016), 280–284 ; Phys. Solid State, 58:2 (2016), 287–292 |
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