Search Results - "Bushkova, O V"

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  1. 1

    Thermodynamics of Interaction between Poly(perfluorosulfonic acid) Nafion and Water by Chernyuk, S. D., Safronov, A. P., Adamova, L. V., Bushkova, O. V.

    “…The thermodynamics of interaction between poly(perfluorosulfonic acid) Nafion and water is studied by isothermal sorption and microcalorimetry. The…”
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    Journal Article
  2. 2

    New lithium salts in electrolytes for lithium-ion batteries (Review) by Bushkova, O. V., Yaroslavtseva, T. V., Dobrovolsky, Yu. A.

    Published in Russian journal of electrochemistry (01-07-2017)
    “…The properties of electrolyte systems based on standard nonaqueous solvent composed of a mixture of dialkyl and alkylene carbonates and new commercially…”
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  3. 3

    Surface Degradation of Lithium–Manganese Spinel in Contact with Lithium-Hexafluorophosphate-Containing Electrolyte Solution by Koshkina, A. A., Yaroslavtseva, T. V., Ukshe, A. E., Kuznetsov, M. V., Surikov, V. T., Bushkova, O. V.

    Published in Russian journal of electrochemistry (01-04-2024)
    “…A set of computational and experimental methods is used in the study of chemical side interactions in the LiMn 2 O 4 -based lithium-ion cathodic half-cell over…”
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  4. 4

    Quantum-Chemical and IR Spectroscopic Study of Ionic Association in Solutions of LiCF3SO3 in Acetonitrile by Erkabaev, A. M., Yaroslavtseva, T. V., Bushkova, O. V.

    Published in Russian Journal of Physical Chemistry A (01-05-2020)
    “…The association of ions in solutions of  lithium trifluoromethanesulfonate in acetonitrile is studied via quantum chemistry and Fourier-transform infrared…”
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  5. 5

    Electrochemical Properties of Superionic Conductors CsAg4Br3 –хI2 +х by Glukhov, A. A., Reznitskikh, O. G., Yaroslavtseva, T. V., Urusova, N. V., Ukshe, A. E., Dobrovolsky, Yu. A., Bushkova, O. V.

    Published in Russian journal of electrochemistry (01-02-2024)
    “…Solid solutions CsAg 4 Br 3 – х I 2 + х ( x = 0.38; 0.50; 0.68) are prepared by solid-state synthesis; the single phase of the products is confirmed using the…”
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  6. 6

    Conductivity of Lithium-Conducting Nafion Membranes Plasticized by Binary and Ternary Mixtures in the Sulfolan–Ethylene Carbonate–Diglyme System by Kayumov, R. R., Shmygleva, L. V., Evshchik, E. Yu, Sanginov, E. A., Popov, N. A., Bushkova, O. V., Dobrovolsky, Yu. A.

    Published in Russian journal of electrochemistry (01-08-2021)
    “…The electrotransport characteristics of the polymer electrolyte based on lithiated Nafion-115 membrane plasticized by high-boiling dipolar aprotic…”
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  7. 7

    Synthesis and Comparative Investigation of the Electrochemical Characteristics of CsAg4Br2.5I2.5 and RbAg4I5 Solid Electrolytes by Reznitskikh, O. G., Yaroslavtseva, T. V., Glukhov, A. A., Popov, N. A., Urusova, N. V., Bukun, N. G., Dobrovolsky, Yu. A., Bushkova, O. V.

    Published in Russian journal of electrochemistry (01-10-2022)
    “…A new method for the solid-phase synthesis of the superionic conductor CsAg 4 Br 2.5 I 2.5 is proposed, which facilitates the preparation of a single-phase…”
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  8. 8

    Algorithm for Theoretical Assessment of the Electrochemical Stability of Electrolytes in Lithium-Ion Batteries by the Example of LiBF4 in the EC/DMC Mixture by Borisevich, S. S., Evshchik, E. Yu, Il’ina, M. G., Khamitov, E. M., Mel’nikova, T. I., Rubtsov, R. Yu, Bushkova, O. V., Dobrovol’skii, Yu. A.

    Published in Russian journal of electrochemistry (01-11-2022)
    “…The resistance of electrolytes to oxidative decomposition on the positive electrode surface is one of barriers that complicate the development of rechargeable…”
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  9. 9

    Phase Diagram of Ethylene Carbonate–Sulfolane System by Reznitskikh, O. G., Istomina, A. S., Borisevich, S. S., Evshchik, E. Yu, Sanginov, E. A., Bushkova, O. V., Dobrovolsky, Yu. A.

    Published in Russian Journal of Physical Chemistry A (01-06-2021)
    “…Phase equilibria in the ethylene carbonate (EC)–sulfolane (SL) binary system were investigated using differential scanning calorimetry in a temperature range…”
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  10. 10

    The Effect of the Lithium Borate Surface Layer on the Electrochemical Properties of the Lithium-Ion Battery Positive Electrode Material LiNi1/3Mn1/3Co1/3O2 by Nefedova, K. V., Zhuravlev, V. D., Murzakaev, A. M., Yagodin, V. V., Kuznetsov, M. V., Evshchik, E. Yu, Skachkov, V. M., Bushkova, O. V.

    Published in Russian journal of electrochemistry (01-11-2021)
    “…The electrochemical behavior of layer-structure LiNi 1/3 Mn 1/3 Сo 1/3 O 2 solid solution, a positive electrode material of lithium-ion battery, with surface…”
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  11. 11

    Solid polymer electrolytes in a poly(butadiene-acrylonitrile)–LiBr system by Yaroslavtseva, T. V., Reznitskikh, O. G., Sherstobitova, E. A., Erkabaev, A. M., Brezhestovsky, M. S., Bushkova, O. V.

    Published in Ionics (01-12-2017)
    “…Poly(nitriles) are among the polymer matrices providing high salt solubility and, in some cases, superionic lithium conductivity at ambient temperatures…”
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  12. 12

    Ion aggregation and phase separation in amorphous poly(nitrile)-based lithium conducting polymer electrolytes by Bushkova, O.V., Erkabaev, A.M., Yaroslavtseva, T.V., Reznitskikh, O.G.

    Published in Solid state ionics (01-05-2019)
    “…In this paper, we analyse ion association, the formation of high ionic aggregates and phase separation in amorphous solvent-free polymer electrolytes based on…”
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  13. 13

    Influence of a binder on the electrochemical behaviour of Si/RGO composite as negative electrode material for Li-ion batteries by Korchun, A. V., Evshchik, E. Yu, Baskakov, S. A., Bushkova, O. V., Dobrovolsky, Y. A.

    Published in Chimica Techno Acta (12-01-2021)
    “…A composite consisting of silicon nanoparticles and reduced graphene oxide nanosheets (Si/RGO) was studied as a promising material for the negative electrode…”
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  14. 14

    Silicon-Reduced Graphene Oxide Composite as Negative Electrode of Li-Ion Batteries by Korchun, A. V., Evshchik, E. Yu, Baskakov, S. A., Yagodin, V. V., Kuznetsov, M. V., Bushkova, O. V., Bukun, N. G., Dobrovolsky, Yu. A.

    Published in Russian journal of applied chemistry (01-12-2020)
    “…Two types of treatment of the initial mechanical mixture [silicon nanopowder and graphene oxide (GO)] for obtaining Si/RGO nanocomposites were used: reduction…”
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  15. 15

    FTIR and quantum chemical study of LiBr solvation in acetonitrile solutions by Erkabaev, A.M., Yaroslavtseva, T.V., Popov, S.E., Bushkova, O.V.

    Published in Vibrational spectroscopy (01-11-2014)
    “…•Combined MP2+SMD and FTIR investigations of ionic species in LiBr/acetonitrile solutions.•The IR spectra for all stable ionic species solvated by acetonitrile…”
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  16. 16

    Fast ionic transport in solid polymer electrolytes based on acrylonitrile copolymers by Bushkova, O.V, Zhukovsky, V.M, Lirova, B.I, Kruglyashov, A.L

    Published in Solid state ionics (01-04-1999)
    “…Conducting properties of solid polymer electrolytes (SPEs) based on acrylonitrile copolymer (with 93 wt.% acrylonitrile units) and LiClO4 have been studied by…”
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  17. 17

    Ion–molecular and ion–ion interactions in solvent-free polymer electrolytes based on amorphous butadiene — acrylontrile copolymer and LiAsF6 by BUSHKOVA, O

    Published in Solid state ionics (15-02-2008)
    “…The effect of lithium salt concentration on ion-molecular and ion-ion interactions in amorphous solvent-free polymer electrolytes was studied by FTIR…”
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  19. 19

    Diffusion transport in hexagonal ferrites with magnetoplumbite structure by Zhukovsky, V.M, Bushkova, O.V, Zainullina, V.M, Dontsov, G.I, Volosentseva, L.I, Zhukovskaya, A.S

    Published in Solid state ionics (01-04-1999)
    “…The diffusion coefficients of lead (plumbum), strontium and barium in hexagonal ferrite ceramics were studied by means of the radio-tracer method. It was…”
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  20. 20

    Magnetron Sputtering Silicon Thin Film Electrodes for Lithium-Ion Batteries by Evshchik, E., Novikov, D., Levchenko, A., Nefedkin, S., Shikhovtseva, A.V., Bushkova, O.V., Dobrovolsky, Yu A.

    “…Thin silicon films were deposited on surface-modified copper foil by magnetron sputtering; Si mass loading varied from 0.013 to 0.400 mg/cm. Scanning electron…”
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