Search Results - "Bashkirov, S.A."

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  1. 1

    Tin sulfide thin films and Mo/p-SnS/n-CdS/ZnO heterojunctions for photovoltaic applications by Bashkirov, S.A., Gremenok, V.F., Ivanov, V.A., Lazenka, V.V., Bente, K.

    Published in Thin solid films (30-06-2012)
    “…Tin sulfide (SnS) is one of the most promising materials for photovoltaics. Here we report on the preparation as well as chemical, structural and physical…”
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    Journal Article
  2. 2
  3. 3

    Effect of precursors pre-annealing on the microstructure of Cu2ZnSnS4 thin films on titanium foil substrate by Bashkirov, S.A., Gremenok, V.F., Juškėnas, R., Giraitis, R., Rakitin, V.V., Novikov, G.F.

    Published in Thin solid films (31-10-2018)
    “…Cu2ZnSnS4 (CZTS) thin films were synthesized by sulfurization of Cu/Sn/Cu/Zn precursors electrochemically deposited on titanium foil substrates. A part of the…”
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    Journal Article
  4. 4

    Cu2ZnSnS4 thin films by sulfurization in melted sulfur by Bashkirov, S.A., Hekkel, U.S., Tivanov, M.S., Saad, A.M.

    Published in Materials letters (01-06-2018)
    “…•We obtained Cu2ZnSnS4 thin films by sulfurization of Cu/Sn/Zn precursors in melted sulfur.•Flexible Mo foil with a thickness of 0.05 mm was used as the…”
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    Journal Article
  5. 5

    Influence of annealing on microstructure and optical properties of hot wall deposited PbxSn(1−x)S thin films by Bashkirov, S.A., Gremenok, V.F., Ivanov, V.A., Bente, K., Gladyshev, P.P., Zelenyak, T.Yu, Saad, A.M., Tivanov, M.S.

    Published in Thin solid films (01-10-2016)
    “…PbxSn(1−x)S (0.05<x<0.20) thin films with the thickness of 2μm were deposited on glass substrates using hot wall vacuum deposition method at the vacuum…”
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  6. 6

    Influence of substrate material on the microstructure and optical properties of hot wall deposited SnS thin films by Bashkirov, S.A., Gremenok, V.F., Ivanov, V.A., Shevtsova, V.V., Gladyshev, P.P.

    Published in Thin solid films (30-06-2015)
    “…Tin monosulfide SnS raises an interest as a promising material for photovoltaics. The influence of the substrate material on the microstructure and optical…”
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    Journal Article
  7. 7

    Microstructure and Raman Scattering of [Cu.sub.2]ZnSn[Se.sub.4] Thin Films Deposited onto Flexible Metal Substrates by Stanchik, A.V, Gremenok, V.F, Bashkirov, S.A, Tivanov, M.S, Juskenas, R.L, Novikov, G.F, Giraitis, R, Saad, A.M

    Published in Semiconductors (Woodbury, N.Y.) (01-02-2018)
    “…[Cu.sub.2]ZnSn[Se.sub.4] thin films are produced by selenizing electrochemically layer-by-layer deposited and preliminarily annealed Cu-Zn-Sn precursors. For…”
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  8. 8

    Physical properties of SnS thin films fabricated by hot wall deposition by Bashkirov, S. A., Gremenok, V. F., Ivanov, V. A.

    Published in Semiconductors (Woodbury, N.Y.) (01-06-2011)
    “…The dependence of the microstructure and optical properties of SnS thin films fabricated by hot wall deposition onto glass substrates on the deposition…”
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    Journal Article
  9. 9

    Microstructure and electrical properties of SnS thin films by Bashkirov, S. A., Gremenok, V. F., Ivanov, V. A., Shevtsova, V. V.

    Published in Physics of the solid state (01-12-2012)
    “…Thin SnS films are of interest for optoelectronics. The influence of the preparation modes on the microstructure and electrical properties of thin SnS films…”
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  10. 10

    Influence of thermal treatment on the microstructure and electrical and optical properties of SnS thin films by Bashkirov, S. A., Gladyshev, P. P., Gremenok, V. F., Ivanov, V. A.

    Published in Physics of the solid state (01-07-2014)
    “…The influence of thermal treatment on the microstructure and electrical and optical properties of SnS films obtained by the “hot-wall” method has been…”
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  11. 11

    Photosensitive thin-film in/p-[Pb.sub.x][Sn.sub. 1 - x]S Schottky barriers: fabrication and properties by Gremenok, V.F, Rud', V.Yu, Rud', Yu.V, Bashkirov, S.A, Ivanov, V.A

    Published in Semiconductors (Woodbury, N.Y.) (01-08-2011)
    “…Thin [Pb.sub.X][Sn.sub.1 - x]S films are obtained by the "hot-wall" method at substrate temperatures of 210-330°C. The microstructure, composition, morphology,…”
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    Journal Article