Микроструктура и комбинационные рассеяние света тонких пленок sb


Рисунок 3 - Спектры комбинационного рассеяния образцов SbxSey, осажденных при различных соотношениях Sb/Se


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Рисунок 3 - Спектры комбинационного рассеяния образцов SbxSey, осажденных при различных соотношениях Sb/Se.


Список литературы

  1. Xiaomin Wang, Rongfeng Tang, Chunyan Wu, Development of antimony sulfide–selenide Sb2(S,Se)3 -based solar cells. Journal of Energy Chemistry 27 (2018) 713–721.

  2. T.M.Razykov. Chemical molecular beam deposition of II-VI binary and ternary compound films in gas flow // Applied Surface Science, -1991, v.48/49, N1, pp.89-92.

  3. V.L. Deringer, R.P. Stoffel, M. Wuttig, R. Dronskowski, Vibrational properties and bonding nature of Sb2Se3 and their implications for chalcogenide materials, Chem. Sci. 6 (2015) 5255–5262, DOI: 10.1039/c5sc00825e.

  4. E.S. Gadelmawla, M.M. Koura, T.M.A. Maksoud, I.M. Elewa, H.H. Soliman, Roughness parameters, J. Mat. Proc. Tech. 123 (2002) 133-145, DOI: 10.1016/S0924-0136(02)00060-2.

  5. H. Lei, J. Chen, Z. Tan, G. Fang, Review of recent progress in antimony chalcogenide-based solar cells: Materials and devices, Sol. RRL (2019), 1900026, https://doi.org/10.1002/solr.201900026.

  6. P. Vidal-Fuentes, M. Guc, X. Alcobe, T. Jawhari, M. Placidi, A. Pérez-Rodríguez, E. Saucedo, V.I. Roca, Multiwavelength excitation Raman scattering study of Sb2Se3 compound: fundamental vibrational properties and secondary phases detection, 2D Materials, 6 (2019) 045054.

  7. A. Shongalova, M.R. Correia, J.P. Teixeira, J.P. Leitão, J.C. González, S. Ranjbar, S. Garud, B. Vermang, J.M.V. Cunha, P.M.P. Salomé, P.A. Fernandes, Growth of Sb2Se3 thin films by selenization of RF sputtered binary precursors, Solar Energy Materials and Solar Cells, 187 (2018) 219-226.

  8. A. Shongalova, M.R. Correia, B. Vermang, J.M.V. Cunha, P.M.P. Salomé, P.A. Fernandes, «On the identification of Sb2Se3 using Raman scattering», MRS Communications 8 (2018) 865–870, https://doi.org/10.1557/mrc.2018.94.

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