HIGH-TEMPERATURE RESISTANT SILICON-ORGANIC COATINGS: SYNTHESIS, PROPERTIES, AND APPLICATIONS
Keywords:
Silicon-organic coatings, high-temperature resistance, thermal stability, adhesion, mechanical properties, corrosion protection, hybrid materialsAbstract
Silicon-organic (Si-organic) coatings exhibit exceptional thermal stability, chemical resistance, and adhesion on metal, ceramic, and glass substrates, making them indispensable in high-temperature industrial applications. This paper presents a comprehensive study on the synthesis, characterization, and performance of high-temperature resistant Si-organic coatings. The coatings are prepared using siloxane prepolymers and functional organic modifiers, with the incorporation of inorganic fillers to enhance thermal and mechanical performance.
References
1. Zhang, L., & Wang, H. (2021). High-temperature resistant silicone-organic coatings: Synthesis and applications. Progress in Organic Coatings, 157, 106261.
2. Singh, R., & Kumar, P. (2019). Silicone-based high-temperature paints for industrial applications. Journal of Coatings Technology and Research, 16, 1727–1739.
3. Liu, Y., Chen, X., & Li, Z. (2020). Thermal and mechanical properties of silicone-organic hybrid coatings. Materials Science and Engineering A, 772, 138706.
4. Farhana, Z., & Rahman, M. (2018). Development of high-performance silicone coatings for aerospace and industrial applications. Applied Surface Science, 440, 1139–1148.
5. Pochiraju, K., & Gupta, A. (2017). Silicone-organic composites for thermal and chemical resistant coatings. Surface & Coatings Technology, 314, 18–27.
6. Wu, Y., & Zhao, H. (2022). Nanofiller-enhanced high-temperature resistant silicon-organic coatings: Performance and mechanisms. Composites Part B: Engineering, 239, 109942.
7. Gao, X., Li, J., & Zhang, T. (2020). High-temperature silicon-organic coatings with phase-change nanocomposites. Journal of Materials Science, 55, 13421–13435.
8. Park, S., & Kim, D. (2019). Durability of silicone-organic hybrid coatings under combined thermal and mechanical stress. Surface & Interface Analysis, 51, 925–934.









