TY - JOUR
T1 - Superhydrophobic alkoxysilane/T-ZnO/SiO2 nanocomposite coatings enhance mechanical properties of porous building substrates
T2 - An experimental and multi-physics simulation study
AU - Cao, Yijian
AU - Wang, Cong
AU - Tie, Fude
AU - Dong, Wenqiang
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/3/14
Y1 - 2025/3/14
N2 - The great promise of superhydrophobic surfaces for broad functional applications has attracted enormous attention, yet their poor durability, potential pollution/health risks and lack of mechanical reinforcement effects for porous substrates impede the application. This work reports superhydrophobic coatings that also enhance the mechanical strength of substrates, fabricated via a one-step fluorine-free preparation and tunning molar ratios between trimethoxyoctylsilane (TMOS), ZnO tetrapods (T-ZnO) and SiO2 nanoparticles. The as-synthesized TMOS/SiO2/T-ZnO= 3/1/1 coating demonstrates the highest surface roughness (23.66 μm), hydrophobicity (166°), and antimicrobial efficacy against Gram-positive/-negative bacteria (82 % and 78 % respectively, at the concentration 2.0 g/L). The isotropic high mechanical and chemical strength of T-ZnO in 3D improves the surface roughness and erosion/abrasion resistance (withstand up to 100 cycles). Moreover, micro-drilling tests show that as-prepared coatings endow porous substrates with additional mechanical strength. The self-condensation of TMOS in the presence of T-ZnO and SiO2, which act as 3D skeleton fillers inside the gelled silica networks, contributes to mechanical strength improvement. Furthermore, the multi-physics simulations reveal that the diffusion capability of coatings and the resulting relative concentration determine their mechanical property. With the facile synthesis and versatility, this work offers an eco-friendly preparation route for multi-functional surfaces, broadening the application and promoting large-scale production.
AB - The great promise of superhydrophobic surfaces for broad functional applications has attracted enormous attention, yet their poor durability, potential pollution/health risks and lack of mechanical reinforcement effects for porous substrates impede the application. This work reports superhydrophobic coatings that also enhance the mechanical strength of substrates, fabricated via a one-step fluorine-free preparation and tunning molar ratios between trimethoxyoctylsilane (TMOS), ZnO tetrapods (T-ZnO) and SiO2 nanoparticles. The as-synthesized TMOS/SiO2/T-ZnO= 3/1/1 coating demonstrates the highest surface roughness (23.66 μm), hydrophobicity (166°), and antimicrobial efficacy against Gram-positive/-negative bacteria (82 % and 78 % respectively, at the concentration 2.0 g/L). The isotropic high mechanical and chemical strength of T-ZnO in 3D improves the surface roughness and erosion/abrasion resistance (withstand up to 100 cycles). Moreover, micro-drilling tests show that as-prepared coatings endow porous substrates with additional mechanical strength. The self-condensation of TMOS in the presence of T-ZnO and SiO2, which act as 3D skeleton fillers inside the gelled silica networks, contributes to mechanical strength improvement. Furthermore, the multi-physics simulations reveal that the diffusion capability of coatings and the resulting relative concentration determine their mechanical property. With the facile synthesis and versatility, this work offers an eco-friendly preparation route for multi-functional surfaces, broadening the application and promoting large-scale production.
KW - Fluorine-free preparation
KW - Mechanical strength enhancing
KW - Multi-functionality
KW - Superhydrophobic
KW - ZnO tetrapod
UR - http://www.scopus.com/inward/record.url?scp=85217719402&partnerID=8YFLogxK
U2 - 10.1016/j.conbuildmat.2025.140412
DO - 10.1016/j.conbuildmat.2025.140412
M3 - 文章
AN - SCOPUS:85217719402
SN - 0950-0618
VL - 467
JO - Construction and Building Materials
JF - Construction and Building Materials
M1 - 140412
ER -