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
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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