Open Access
Issue
E3S Web Conf.
Volume 692, 2026
3rd International Conference on Intelligent and Sustainable Power and Energy Systems (ISPES 2025)
Article Number 04009
Number of page(s) 13
Section Materials Science
DOI https://doi.org/10.1051/e3sconf/202669204009
Published online 04 February 2026
  1. Hikasa, T. Sekino, Y. Hayashi, R. Rajagopalan, K. Niihara, Preparation and corrosion studies of self-healing multilayered nano coatings of silica and swelling clay. Mater. Res. Innov. 8, 84–88 (2004). [Google Scholar]
  2. G. Goel, P. Sachdeva, A. K. Chaudhary, Y. Singh, The use of nanomaterials in concrete: A review. Mater. Today Proc. 69 (Part 2), 365–371 (2022). [Google Scholar]
  3. F. Ayres et al., The behaviour of amorphous silica coatings at high temperatures in aggressive environments. J. Phys. IV 3, 855–863 (1993). [Google Scholar]
  4. L. Cunha, F. Vaz, C. Moura, D. Munteanu, C. Ionescu, J. P. Rivière, E. Le Bourhis, Ti– Si–C thin films produced by magnetron sputtering: correlation between physical properties, mechanical properties and tribological behavior. J. Nanosci. Nanotechnol. 10 (4), 2926–2932 (2010). [Google Scholar]
  5. Stojanovic, A. Orlovic, S. Markovic et al., Nanosilica/PMMA composites obtained by the modification of silica nanoparticles in a supercritical carbon dioxide–ethanol mixture. J. Mater. Sci. 44, 6223–6232 (2009). [Google Scholar]
  6. G. Quercia Bianchi, H. J. H. Brouwers, G. Hüsken, Application of nano-silica in concrete: Quarterly project report. Mater. Innov. Inst. (M2i), Eindhoven, The Netherlands (2010). [Google Scholar]
  7. G. Quercia Bianchi, G. Hüsken, H. J. H. Brouwers, Application of nano-silica in concrete. Mater. Innov. Inst. (M2i), Q3 Project Report (2012). [Google Scholar]
  8. L. Akesso, M. E. Pettitt, J. A. Callow, M. E. Callow, J. Stallard, D. Teer, C. Liu, S. Wang, Q. Zhao, F. D’Souza, P. R. Willemsen, G. T. Donnelly, C. Donik, A. Kocijan, M. Jenko, L. A. Jones, P. C. Guinaldo, The potential of nano-structured silicon oxide type coatings deposited by PACVD for control of aquatic biofouling. Biofouling 25 (1), 55–67 (2009). [Google Scholar]
  9. X. Pang, I. Zhitomirsky, Electrodeposition of nanocomposite organic–inorganic coatings for biomedical applications. Int. J. Nanosci. 4 (3), 409–418 (2005). [Google Scholar]
  10. N. N. Voevodin, V. N. Balbyshev, M. Khobaib, M. S. Donley, Nanostructured coatings approach for corrosion protection. Prog. Org. Coat. 47 (3–4), 416–423 (2003). [Google Scholar]
  11. Y. Wang, S. Lim, J. L. Luo, Z. H. Xu, Tribological and corrosion behaviors of Al₂O₃/polymer nanocomposite coatings. Wear 260 (9–10), 976–983 (2006). [Google Scholar]
  12. Y. Castro, B. Ferrari, R. Moreno, A. Durán, Coatings produced by electrophoretic deposition from nano-particulate silica sol–gel suspensions. Surf. Coat. Technol. 182 (2–3), 199–203 (2004). [Google Scholar]
  13. Z. Wang, E. Han, F. Liu, W. Ke, Fire and corrosion resistances of intumescent nano-coating containing nano-SiO₂ in salt spray condition. J. Mater. Sci. Technol. 26 (1), 75–81 (2010). [Google Scholar]
  14. S. Mallakpour, M. Naghdi, Polymer/SiO₂ nanocomposites: production and applications. Prog. Mater. Sci. 97, 409–447 (2018). [Google Scholar]

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