Search Results - "Sapurina, I"

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  1. 1

    Electric properties of MnZn ferrite/polyaniline composites: the implication of polyaniline morphology by Moučka, R., Kazantseva, N., Sapurina, I.

    Published in Journal of materials science (01-02-2018)
    “…(Di)electric properties of MnZn ferrite particles coated by conductive (emeraldine salt) and non-conductive (emeraldine base) forms of PANi were measured and…”
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  2. 2

    Fabrication of a flexible binder-free lithium manganese oxide cathode for secondary Li - Ion batteries by Bubulinca, C., Sapurina, I., Kazantseva, N.E., Vilčáková, J., Cheng, Q., Sáha, P.

    “…The binder-free technology is used to produce flexible self-standing cathodes for secondary Li-ion batteries containing commercial materials: lithium manganese…”
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  3. 3

    Composite Textile with Electroconductive and Magnetic Properties by Sapurina, I. Yu, Shishov, M. A., Shcherbakov, A. E., Spivak, Yu. M., Selutin, A. A.

    Published in Polymer science. Series B (01-06-2024)
    “…Electrically conductive composite textile and textile combining electrically conductive and magnetic properties have been obtained on the basis of…”
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  4. 4

    Electroconductive Materials Based on Polylactide and Polypyrrole for Biomedical Applications by Zavrazhnykh, N. A., Sapurina, I. Yu, Shishov, M. A., Ivan’kova, E. M., Orlov, V. P., Yudin, V. E.

    “…Electroconductive scaffolds of different shape for tissue engineering have been obtained on the basis of two biocompatible polymers: polylactide and…”
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  5. 5

    The reduction of silver ions with polyaniline: The effect of the type of polyaniline and the mole ratio of the reagents by Stejskal, J., Prokeš, J., Sapurina, I.

    Published in Materials letters (31-03-2009)
    “…Polyaniline granules and nanotubes were suspended in solutions of silver nitrate in 1 M nitric acid. The resulting polyaniline–silver composites had…”
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  6. 6

    Electrical Stimulation of Human Dermal Fibroblasts on Conducting Matrix by Kolbe, K. A., Shishov, M. A., Sapurina, I. Yu, Smirnova, N. V., Kodolova-Chukhontseva, V. V., Dresvyanina, E. N., Kamalov, A. M., Yudin, V. E.

    Published in Technical physics (2024)
    “…Conducting composite based on biocompatible chitosan and single wall carbon nanotubes was used as a matrix for electrical stimulation of human fibroblasts…”
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  7. 7

    Crystals of the Phenazine Coordination Polymer with the Third Order Symmetry Axis: Formation, Properties by Kompan, M. E., Malyshkin, V. G., Boiko, M. E., Sharkov, M. D., Sapurina, I. Yu, Shishov, M. A.

    Published in Technical physics (01-11-2023)
    “…Unusual quasi-two-dimensional crystals of a regular triangular shape, self-formed in the process of obtaining a coordination polymer based on phenazine and…”
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  8. 8

    Electric and thermoelectric properties of a coordination polymer based on phenazine ligands and silver by Tretyakov Artem, Kapralova Viktoria, Sapurina Irina, Sudar Nicolay, Shishov Mikhail

    “…The paper presents the results of an experimental study of the electric conductivity and thermoelectric properties of a new coordination polymer (CP) based on…”
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  9. 9

    Impedance Spectroscopy of Charge Conducting Composite Materials Based on Microfibers of Polyvinylidene Fluoride Copolymer with Trifluoroethylene Modified with Polypyrrole by Kapralova, V. M., Sapurina, I. Yu, Sudar, N. T., Tretyakov, A. A., Gryshkov, O., Glasmacher, B.

    Published in Technical physics letters (01-08-2021)
    “…Abstarct —The impedance spectra of composite nonwoven materials based on nano- and microfibers of polyvinylidene fluoride copolymer with trifluoroethylene…”
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  10. 10

    Increasing the high-frequency magnetic permeability of MnZn ferrite in polyaniline composites by incorporating silver by Babayan, V., Kazantseva, N.E., Sapurina, I., Moučka, R., Stejskal, J., Sáha, P.

    “…A hybrid composite containing 73vol% of MnZn ferrite, 21vol% of polyaniline, and 6vol% of silver is obtained by oxidative polymerization of aniline with silver…”
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  11. 11

    Magnetoactive feature of in-situ polymerised polyaniline film developed on the surface of manganese–zinc ferrite by Babayan, V., Kazantseva, N.E., Sapurina, I., Moučka, R., Vilčáková, J., Stejskal, J.

    Published in Applied surface science (15-07-2012)
    “…► In-situ grown PANI film on the surface of MnZn ferrite exhibits magnetoactive properties. ► Ferrite accelerates PANI growth by sorption of paramagnetic…”
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  12. 12

    Composite Matrices Based on Copolyamide and Polypyrrole for Tissue Engineering by Smirnova, N. V., Sapurina, I. Yu, Shishov, M. A., Kolbe, K. A., Ivan’kova, E. M., Matrenichev, V. V., Yudin, V. E.

    Published in Technical physics (01-10-2020)
    “…We have demonstrated the possibility of application of electroconducting polymers for fabricating bioactive matrices for tissue engineering. Polypyrrole is…”
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  13. 13

    Synthesis and Properties of a Conducting Material Based on Hybrid Nanofibers of Aliphatic Copolyamide and Polypyrrole by Sapurina, I. Yu, Matrenichev, V. V., Vlasova, E. N., Shishov, M. A., Ivan’kova, E. M., Dobrovolskaya, I. P., Yudin, V. E.

    Published in Polymer science. Series B (01-03-2020)
    “…The conducting film material intended for research in the field of cell technology is obtained on the basis of two biocompatible polymers—aliphatic copolyamide…”
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  14. 14

    Combined effect of demagnetizing field and induced magnetic anisotropy on the magnetic properties of manganese–zinc ferrite composites by Babayan, V., Kazantseva, N.E., Moučka, R., Sapurina, I., Spivak, Yu.M., Moshnikov, V.A.

    “…This work is devoted to the analysis of factors responsible for the high-frequency shift of the complex permeability (μ⁎) dispersion region in polymer…”
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  15. 15

    Ferromagnetic behaviour of polyaniline-coated multi-wall carbon nanotubes containing nickel nanoparticles by Konyushenko, E.N., Kazantseva, N.E., Stejskal, J., Trchová, M., Kovářová, J., Sapurina, I., Tomishko, M.M., Demicheva, O.V., Prokeš, J.

    “…Multi-wall carbon nanotubes (CNT) containing the residual nickel catalyst nanoparticles have been coated with a conducting polymer, polyaniline (PANI),…”
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  16. 16

    Variation in the Conductivity of Polyaniline Nanotubes During Their Formation by Kapralova, V. M., Sapurina, I. Yu, Sudar’, N. T.

    Published in Semiconductors (Woodbury, N.Y.) (01-06-2018)
    “…It is shown that the method for the growth of conducting polyaniline nanotubes, based on the direct polymerization of aniline on the surface of channels in…”
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  17. 17

    Sorption of Flu Viruses from Aqueous Media by Composites of Electrically Conducting Polymers: Polyaniline and Polypyrrole by Ivanov, V. F., Garina, E. O., Sapurina, I. Yu, Gribkova, O. L., Burtseva, E. I., Ivanova, V. T., Vannikov, A. V.

    “…Composites of polymers with conjugated chain structures, polyaniline and polypyrrole, are used as sorbents for human and bird flu viruses. Sorption properties…”
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  18. 18

    Nanostructures of oligoaniline and polyaniline and their properties by Shishov, M. A., Moshnikov, V. A., Sapurina, I. Yu

    Published in Glass physics and chemistry (01-02-2011)
    “…A conductive polymer, polyaniline, has been synthesized in the form of nanoparticles of different morphology: globules with a size of 100 nm, nanotubes with an…”
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  19. 19

    Comparative study of carbon nanotubes and polymer composites with silver as sorbents of the influenza A and B viruses by Ivanova, V T, Ivanova, M V, Sapurina, I Yu, Burtseva, E I, Trushakova, S V, Isaeva, E I, Kirillova, E S, Stepanova, H V, Oscerco, T A, Manykin, A A

    Published in Voprosy virusologiĭ (2015)
    “…The comparative examination of the interaction of the influenza A and B viruses and fragments of DNA with the carbon nanotubes--composites of polyaniline…”
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  20. 20

    Polyanine and its composites as sorbents of influenza viruses by Sapurina, I. Yu, Ivanova, M. V., Ivanova, V. T., Burtseva, E. I., Trushakova, S. V., Isaeva, E. I., Kirilova, E. S., Kurochkina, Ya. E., Manykin, A. A., Uryvaev, L. V.

    “…Polyaniline and its composites with carbon nanotubes or silver nanoparticles are prepared and characterized via electron microscopy, spectroscopy,…”
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