以含氢MQ硅树脂(HMQ)和1,2-环氧-4-乙烯基环己烷(VCHO)为原料,2,6-二叔丁基-4-甲氧基苯酚(BHT)为抗氧化剂,无水甲苯为溶剂,在铂的乙烯基络合物催化作用下通过硅氢加成反应制备得到含有脂环族环氧官能团和硅羟基的有机硅树脂,通过核磁共振波谱(NMR)、傅里叶红外光谱(FT-IR)以及凝胶渗透色谱(GPC)等手段对树脂结构进行了表征。对合成的脂环族环氧官能化硅树脂进行UV及潮气双重固化实验,探究了UV光照时间、脂环族环氧基含量以及Si-OH含量等因素对硅树脂材料性能的影响。结果表明:当UV光照时间为20s时,制备得到的双固化树脂材料的综合性能良好,凝胶率大于80%、吸水率小于2.4%、水接触角大于111.2°、氮气中5%失重温度大于370℃、空气中5%失重温度大于340℃、玻璃化转变温度(Tg)大于17℃、铅笔硬度大于4H(3d)。
Using hydrogen-containing MQ silicone resin (HMQ) and 1,2-epoxy-4-vinylcyclohexane (VCHO) as raw materials,2,6-di-tert-butyl-4-methoxyphenol (BHT) as anti-oxidant and anhydrous toluene as the solvent,organosilicon resins containing alicyclic epoxy functional groups and silicon hydroxyl groups were prepared through hydrosilylation reaction under the catalysis of a platinum vinyl complex.The nuclear magnetic resonance spectrum (NMR),Fourier transform infrared spectroscopy (FT-IR) and gel permeation chromatography (GPC) were used to characterize the structures of the resins.UV and moisture dual curing experiments were carried out on the synthesized cycloaliphatic epoxy functionalized silicone resin,and the influence of factors such as UV irradiation time,cycloaliphatic epoxy group content and Si-OH content on the properties of the silicone resin materials were explored.The results showed that when the UV irradiation time was 20 s,the comprehensive performance of the prepared dual-cured resin material achieved excellent comprehensive performance with a gel rate greater than 80%,the water absorption rate less than 2.4%,the water contact angle greater than 111.2°,the 5% weight loss temperature in nitrogen gas greater than 370℃,the 5% weight loss temperature in air greater than 340℃,the glass transition temperature Tg greater than 17℃,and the pencil hardness value higher than 4H.
[1] Li X,Wang D,Zhao L,et al.UV LED curable epoxy soybean-oil-based waterborne PUA resin for wood coatings[J].Progress in Organic Coatings,2021,151:105942.
[2] 任永霞.快速紫外光固化聚氨酯丙烯酸树脂的改性研究[D].北京:清华大学,2019.
[3] Li C C,Lai T Y,Fang T H.Corrosion resistant coatings based on zinc nanoparticles,epoxy and silicone resins[J].Journal of Nanoscience and Nanotechnology,2020,20(10):6389-6395.
[4] 狄宁宇,张飞,程微,等.高导热无溶剂绝缘漆的开发及性能研究[J].绝缘材料,2021,54(2):33-36.
[5] Rogozhina L G,Kuzmin M V,Semenov V L,et al.Heat-resistant electrical-insulating varnish compositions based on cyanurethanes for the electrical industry[J].Russian Electrical Engineering,2022,93(8):539-543.
[6] Doi T,Amano Y,Unno A.Effect of chemical structure of polyesterimide in insulating varnish on the hardness of enamel wire coating[J].Bunseki Kagaku,2020,69(6):279-290.
[7] 朱晓敏,章基凯.有机硅材料基础[M].北京:化学工业出版社,2013.
[8] 王有亮.三防漆及其去除技术的研究综述[J].电子产品可靠性与环境试验,2014,32(4):39-44.
[9] 胡盛文.聚氨酯三防漆环境适用性研究[J].家电科技,2020(4):57-61.
[10] 冯汉文.可紫外光-湿气双重固化硅氧烷改性环氧丙烯酸酯的合成及其填充体系的研究[D].广州:华南理工大学,2013.
[11] 郭秀平.紫外-湿气固化丙烯酸酯聚硅氧烷的合成及性能研究[D].北京:北京化工大学,2017.
[12] 廖正福.硅氧烷型光/潮气双固化保形涂料用树脂的设计和生产[J].广西师范学院学报(自然科学版),2005,22(4):45-48.
[13] 刘长亮,鲍传美,刘琳,等.环氧树脂快速固化技术在无人机机体抢修中的应用[J].玻璃钢/复合材料,2015(2):68-71.
[14] 陈小文,李建雄,刘安华.快速成型自由基光固化树脂的研究[J].材料研究与应用,2010,4(4):635-640.
[15] Petko F,Świeży A,Ortyl J.Photoinitiating systems and kinetics of frontal photopolymerization processes-the prospects for efficient preparation of composites and thick 3D structures[J].Polymer Chemistry,2021,12(32):4593-4612.
[16] Talianov P M,Rzhevskii S S,Pankin D V,et al.Structural features of functional polysiloxanes radical and ionic photo-curing for laser printing applications[J].Journal of Polymer Research,2021,28:1-11.
[17] 聂俊何,孙梦洲.紫外阳离子光固化研究进展[J].涂料技术与文摘,2007(10):1-4,9.
[18] Jiang Bo,Shi Xiangrong,Zhang Tong.Recent advances in UV/thermal curing silicone polymers[J].Chemical Engineering Journal,2022,435:134843.
[19] Sangermano Marco,Razza Nicolò,Crivello James Vincent.Cationic UV-curing technology and applications[J].Macromolecular Materials and Engineering,2014,299(7):775-793.
[20] Barletta M,Vesco S,Puopolo M,et al.High performance composite coatings on plastics:UV-curable cycloaliphatic epoxy resins reinforced by graphene or graphene derivatives[J].Surface and Coatings Technology,2015,272:322-336.
[21] Adam Robak.赵嵩译.紫外光LED固化技术:未来已来[J].印刷,2021(S2):32-34.
[22] 胡金杰.紫外光固化技术及其应用[J].中国皮革,2002,31(17):42.
[23] Kim S H.Preparation of UV protective cotton fabrics by novel UV-curing technique-Using a photocrosslinkable polymer,poly (ethylene glycol) dimethacylate[J].Journal of Fashion Business,2007,11(6):52-61.
[24] 谢寒,汤佳,惠正权,等.双重固化体系在电子材料中的应用[J].中国涂料,2021,36(9):40-44.
[25] 毛伟,李守海,黄坤,等.UV光-暗双重固化体系的研究进展[J].生物质化学工程,2016,50(5):60-66.
基金资助
宁波市重大科技任务攻关项目(2021Z074)