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Superior Hard but Quickly Reversible Si-O-Si Network Enables Scalable Fabrication of Transparent, Self-Healing, Robust, and Programmable Multifunctional Nanocomposite Coatings.

Yi HouGuangda ZhuJie CuiNingning WuBintao ZhaoJian XuJian Xu
Published in: Journal of the American Chemical Society (2021)
A coating with programmable multifunctionality based on application requirements is desirable. However, it is still a challenge to prepare a hard and flexible coating with a quick self-healing ability. Here, a hard but reversible Si-O-Si network enabled by aminopropyl-functionalized poly(silsesquioxane) and triethylamine (TEA) was developed. On the basis of this Si-O-Si network, basic coatings with excellent transparency, hardness, flexibility, and quick self-healing properties can be prepared by filling soft polymeric micelles into hard poly(silsesquioxane) networks. The highly cross-linked continuous network endows the coating with a hardness ( H = 0.83 GPa) higher than those of most polymers ( H < 0.3 GPa), while the uniformly dispersed micelles decrease the Young's modulus ( E = 5.89 GPa) to a value as low as that of common plastics, resulting in excellent hardness and flexibility, with an H / E of 14.1% and an elastic recovery rate ( W e ) of 86.3%. Scratches (∼50 μm) on the coating can be healed within 4 min. The hybrid composition of poly(silsesquioxane) networks also shows great advantages in integration with other functional components to realize programmable multifunctionality without diminishing the basic properties. This nanocomposite design provides a route toward the preparation of materials with excellent comprehensive functions without trade-offs between these properties.
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