Tetraetoksysilan (Polish Wikipedia)

Analysis of information sources in references of the Wikipedia article "Tetraetoksysilan" in Polish language version.

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dx.doi.org

  • M. Stammler, R. Bruenner, D. Orcutt, Diffraction Maxima Positions in Two Types of Liquid Organosilicon Compounds, „Advances in X-ray Analysis”, 8, 1964, s. 162–174, DOI10.1154/S0376030800003074 [dostęp 2022-01-10] (ang.).
  • Justyna Krzak i inni, Sol–gel surface functionalization regardless of form and type of substrate, [w:] Chaudhery Mustansar Hussain (red.), Handbook of nanomaterials for manufacturing applications, Elsevier, 2020, s. 111–147, DOI10.1016/b978-0-12-821381-0.00005-3, ISBN 978-0-12-821381-0 [dostęp 2022-01-07] (ang.), patrz s. 114.
  • Huda Abdullah i inni, (SiO2)100-x-Nix (x = 2.5, 10.0) Composite-based photoanode with polymer gel electrolyte for increased dye-sensitized solar cell performance, „Ionics”, 25 (7), 2019, s. 3387–3396, DOI10.1007/s11581-019-02886-w [dostęp 2022-01-10] (ang.).
  • Qian Guo i inni, Synthesis and characterization of spherical silica nanoparticles by modified Stöber process assisted by slow-hydrolysis catalyst, „Colloid and Polymer Science”, 296 (2), 2018, s. 379–384, DOI10.1007/s00396-017-4260-0 [dostęp 2022-01-10] (ang.).
  • Gaoyuan Ren, Hongjiu Su, Shudong Wang, The combined method to synthesis silica nanoparticle by Stöber process, „Journal of Sol-Gel Science and Technology”, 96 (1), 2020, s. 108–120, DOI10.1007/s10971-020-05322-y [dostęp 2022-01-10] (ang.).
  • Werner Stöber, Arthur Fink, Ernst Bohn, Controlled growth of monodisperse silica spheres in the micron size range, „Journal of Colloid and Interface Science”, 26 (1), 1968, s. 62–69, DOI10.1016/0021-9797(68)90272-5 [dostęp 2022-01-10] (ang.).
  • Mary W. Colby, A. Osaka, J.D. Mackenzie, Effects of temperature on formation of silica gel, „Journal of Non-Crystalline Solids”, 82 (1-3), 1986, s. 37–41, DOI10.1016/0022-3093(86)90108-0 [dostęp 2022-01-10] (ang.).
  • Mercedes Perullini i inni, Effect of synthesis conditions on the microstructure of TEOS derived silica hydrogels synthesized by the alcohol-free sol–gel route, „Journal of Sol-Gel Science and Technology”, 59 (1), 2011, s. 174–180, DOI10.1007/s10971-011-2478-8 [dostęp 2022-01-10] (ang.).
  • Libor Matějka, Josef Pleštil, Karel Dušek, Structure evolution in epoxy–silica hybrids: sol–gel process, „Journal of Non-Crystalline Solids”, 226 (1-2), 1998, s. 114–121, DOI10.1016/S0022-3093(98)00356-1 [dostęp 2022-01-10] (ang.).
  • A. Venkateswara Rao, Sharad D. Bhagat, Synthesis and physical properties of TEOS-based silica aerogels prepared by two step (acid–base) sol–gel process, „Solid State Sciences”, 6 (9), 2004, s. 945–952, DOI10.1016/j.solidstatesciences.2004.04.010 [dostęp 2022-01-10] (ang.).
  • A. Venkateswara Rao i inni, Influence of temperature on the physical properties of TEOS silica xerogels, „Ceramics International”, 25 (6), 1999, s. 505–509, DOI10.1016/S0272-8842(97)00085-0 [dostęp 2022-01-10] (ang.).
  • Robert L. Bedard, Synthesis of Zeolites and Manufacture of Zeolitic Catalysts and Adsorbents, [w:] Santi Kulprathipanja (red.), Zeolites in industrial separation and catalysis, Weinheim: Wiley-VCH Verlag GmbH & Co. KGaA, 2010, s. 61–83, DOI10.1002/9783527629565.ch3, ISBN 978-3-527-62956-5, OCLC 587391498 (ang.).

nih.gov

pubchem.ncbi.nlm.nih.gov

pwr.edu.pl

materialsscience.pwr.edu.pl

sigmaaldrich.com

worldcat.org

  • Robert L. Bedard, Synthesis of Zeolites and Manufacture of Zeolitic Catalysts and Adsorbents, [w:] Santi Kulprathipanja (red.), Zeolites in industrial separation and catalysis, Weinheim: Wiley-VCH Verlag GmbH & Co. KGaA, 2010, s. 61–83, DOI10.1002/9783527629565.ch3, ISBN 978-3-527-62956-5, OCLC 587391498 (ang.).