Improved thermal oxidative aging resistance of silicone rubber via incorporation with Fe-MOFs

材料科学 热重分析 硫化 硅橡胶 热稳定性 差示扫描量热法 复合材料 极限抗拉强度 降级(电信) 硅酮 天然橡胶 热分解 延伸率 加速老化 分解 热的 聚合物 化学工程 有机硅树脂 热分析
作者
Fangchao Zhao,Zeyu Ren,Hulin Wu,Hongming Zhang,Xiaohui Gu,Yanchun Li
出处
期刊:Polymer Testing [Elsevier BV]
卷期号:155: 109096-109096
标识
DOI:10.1016/j.polymertesting.2026.109096
摘要

Under harsh service conditions, room temperature vulcanized silicone rubber (RTV) is required to exhibit excellent thermal-oxidative aging resistance while maintaining its mechanical performance. To meet this demand, iron-based metal–organic frameworks (Fe-MOFs) were synthesized and incorporated into the RTV matrix. The influence of three different fillers — Fe-MOFs, graphene, and Fe-MOFs/graphene — on the thermal oxidative stability and mechanical properties of RTV was systematically investigated and compared. Low-field nuclear magnetic resonance (LF-NMR) was employed to probe the evolution of crosslink density at the molecular level during thermal-oxidative aging, while the thermal degradation behavior was comprehensively characterized using thermogravimetric analysis coupled with differential scanning calorimetry (TGA/DSC)-FTIR. The results revealed that Fe-MOFs can elevate the thermal decomposition temperature of RTV silicone rubber by 42 °C, while simultaneously enhancing its tensile strength by 1.7 times and increasing its elongation at break by 14.6%. During the thermal oxidative aging process, Fe-MOFs effectively suppress the premature degradation of RTV and the associated deterioration of mechanical properties. This protective effect is primarily attributed to two factors: first, Fe-MOFs increase the crosslinking density of RTV by 13.6%; second, the organic framework structure of Fe-MOFs efficiently scavenges free radicals, thereby retarding the progression of oxidative reactions. • Fe-MOFs enhance the anti-thermal-oxidation aging performance of RTV by capturing free radicals. • Fe-MOFs can adjust the crosslinking density of RTV, thereby improving its mechanical properties. • 3% Fe-MOFs elevated the thermal decomposition temperature of RTV by 42 °C. • 3% Fe-MOFs enhanced RTV’s tensile strength by 1.5 times.
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