功能材料
功能材料
공능재료
JOURNAL OF FUNCTIONAL MATERIALS
2012年
8期
1084-1088
,共5页
涂层%耐磨%溶胶-凝胶%聚碳酸酯
塗層%耐磨%溶膠-凝膠%聚碳痠酯
도층%내마%용효-응효%취탄산지
coating%abrasion resistance%sol-gel%polycarbonate
以正硅酸乙酯(TEOS)作为无机组分的前驱体,甲基三甲氧基硅烷(MTMS)水解聚合产物作为有机组分,通过溶胶-凝胶法在聚碳酸酯(PC)表面形成耐磨涂层。红外光谱分析表明该涂层具有Si—O—Si的交联网络结构。研究了MTMS和TEOS的摩尔比对涂层的光学性能、硬度、附着力和耐磨性能的影响。结果表明,当MTMS和TEOS的摩尔比为2∶1时,涂层的综合性能达到最优,该涂层在经历500次耐磨试验后的雾度为12.69%,而纯PC的雾度增至42.38%。采用SEM和TEM分析了MTMS/TEOS具有优异耐磨性能的原因在于该涂层具有纳米SiO2粒子分散于有机基体的微观结构。
以正硅痠乙酯(TEOS)作為無機組分的前驅體,甲基三甲氧基硅烷(MTMS)水解聚閤產物作為有機組分,通過溶膠-凝膠法在聚碳痠酯(PC)錶麵形成耐磨塗層。紅外光譜分析錶明該塗層具有Si—O—Si的交聯網絡結構。研究瞭MTMS和TEOS的摩爾比對塗層的光學性能、硬度、附著力和耐磨性能的影響。結果錶明,噹MTMS和TEOS的摩爾比為2∶1時,塗層的綜閤性能達到最優,該塗層在經歷500次耐磨試驗後的霧度為12.69%,而純PC的霧度增至42.38%。採用SEM和TEM分析瞭MTMS/TEOS具有優異耐磨性能的原因在于該塗層具有納米SiO2粒子分散于有機基體的微觀結構。
이정규산을지(TEOS)작위무궤조분적전구체,갑기삼갑양기규완(MTMS)수해취합산물작위유궤조분,통과용효-응효법재취탄산지(PC)표면형성내마도층。홍외광보분석표명해도층구유Si—O—Si적교련망락결구。연구료MTMS화TEOS적마이비대도층적광학성능、경도、부착력화내마성능적영향。결과표명,당MTMS화TEOS적마이비위2∶1시,도층적종합성능체도최우,해도층재경력500차내마시험후적무도위12.69%,이순PC적무도증지42.38%。채용SEM화TEM분석료MTMS/TEOS구유우이내마성능적원인재우해도층구유납미SiO2입자분산우유궤기체적미관결구。
The hybrid coatings were synthesized through the sol-gel process using MTMS as organic pnase, tetraethoxysilane (TEOS) as the inorganic network precursor and deposited on polycarbonate for improvement of abrasion resistance. FT-IR showed that the cross linked network structure of Si--O--Si formed due to the hy- drolysis-condensation reactions of alkoxy groups in the MTMS/ TEOS sol. The influence of the mole ratios of MTMS and TEOS on the optical properties, pencil hardness, adhesion properties and the abrasion resistance of the coatings were investigated. The result indicate that the MTMS/ TEOS coating possess the best properties when the original molar ratio of MTMS and TEOS is 2 : 1. After 500 wear cycles during an abrasion test, the haze of PC coated with the hybrid coating derived from the optimized component was only 12.69%, while that of uncoated PC rose up to 42.38%. Scanning electron microscope (SEM) and transmission electron microscope (TEM) were used to determine the microstructure of the MTMS/ TEOS coating and the micrographs revealed the homogeneous dispersion of nanosilica particles in the polymeric matrix.