KH560 modified silica xerogel from rice husk ash for epoxy composite coating on steel: effects of post calcination on silane grafting and interfacial bonding

材料科学 嫁接 去壳 煅烧 复合材料 硅烷 复合数 涂层 环氧树脂 化学工程 粘结强度 形态学(生物学) 溶胶凝胶 表面改性
作者
Zulhelmi Alif Abdul Halim,Rozalina Amran,I. Nuhu,Muhamad Azizi Mat Yajid
出处
期刊:Journal of Adhesion Science and Technology [Taylor & Francis]
卷期号:40 (13): 2275-2292
标识
DOI:10.1080/01694243.2025.2611989
摘要

Silica xerogel (SiO2-X) derived from rice husk ash was evaluated as a reinforcement for epoxy coatings. Although γ-glycidyloxypropyl trimethoxysilane (KH560) is widely used to enhance silica–epoxy compatibility, grafting is often hindered by the high silanol density of sol–gel derived SiO2-X. This study examines how the elimination of silanol groups via calcination improves silane coupling, thereby influencing the physico-mechanical properties of epoxy coatings. Calcination at 500 °C for 2 h removed ∼7.5 wt% of water and hydroxyl species, as confirmed by thermogravimetric analysis (TGA), and reduced the BET surface area from 382 to 215 m2/g. Both uncalcined and calcined SiO2-X were silanized with KH560 and incorporated at 5 wt% into a diglycidyl ether bisphenol A (DGEBA) epoxy matrix. The calcined SiO2-X filler enabled more efficient grafting, leading to superior film formation and stronger interfacial bonding. This was demonstrated by a 45% increase in pull-off adhesion strength, a 35% rise in water contact angle (WCA), improved microstructural homogeneity observed via SEM, and significantly enhanced abrasion resistance in a linear reciprocating ball-on-flat wear test. Differential scanning calorimetry (DSC) further showed that uncalcined SiO2-X disrupted epoxy curing, lowering the glass transition temperature, whereas the calcined SiO2-X maintained normal polymerization behavior. The findings indicate that proper control of surface hydroxyl concentration is crucial for optimizing the reinforcing capability of bio-derived SiO2-X in epoxy coatings.
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