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首页> 外文期刊>Journal of Applied Polymer Science >Properties of epoxy molding compound according to the pretreatment method of an amino-silane coupling agent on epoxy or phenol resin
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Properties of epoxy molding compound according to the pretreatment method of an amino-silane coupling agent on epoxy or phenol resin

机译:根据氨基硅烷偶联剂预处理方法在环氧树脂或酚醛树脂上的环氧模塑化合物的性能

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摘要

An amino-functional silane Coupling agent, which is an important component for epoxy molding compound (EMC), has been used by diverse methods, Such as integral addition into a mixed powder and pretreatment on silica or on resin. However, the homogeneous dispersion of the amino-functional silane coupling agent in mixed powder is limited with integral addition, and the possibility of white gel formation, sometimes causing gate blocking during the transfer-molding process, due to the aggregation of silica with the coupling agent cannot be completely removed by it. The pretreatment of the amino-functional silane Coupling agent on silica has been adopted as an alternative process, but the process is expensive and limited in mass production. Although the pretreatment Of the Coupling agent on resin as another method has also been used by some EMC manufacturing companies, it has hardly been known in which resin phase, the epoxy or hardener, the silane Coupling agent should be pretreated for better mechanical properties of EMC. In this study, the pretreatment of the amino-functional silane coupling agent on epoxy or phenol resin, essential components of EMC, has been investigated with respect to the reaction during the pretreatment and the properties of EMC according to the different pretreatment methods. In the case of the pretreatment on epoxy, the amino-functional silane coupling agent rapidly forms an adduct with epoxy via a ring-opening reaction, whereas its alkoxy groups are well preserved. The glass-transition temperature and flexural strength of the EMC by the application of the pretreatment method on epoxy are lower than those by the pretreatment on phenol. It is thought that the degree of linkage between the resin matrix and silica becomes lower because of the confinement of aminopropyltriethoxy silane (APTS) within the epoxy matrix through an irreversible reaction with epoxy in advance. In the case of the pretreatment on phenol, most of the alkoxy groups in the coupling agent are assumed to be replaced with protonic nucleophiles such as phenol, generating an equivalent amount of alcohol. Because the adduct between the phenol and amino-functional silane coupling agent can be easily regenerated during the manufacturing process, it is thought that the pretreatment method of APTS on phenol helps APTS disperse well within EMC. Actually, the glass-transition temperature and flexural strength of EMC by the application of the pretreatment method on phenol are higher than those by the integral addition method and the pretreatment on epoxy. However, they become lower as the degree of reaction of silane with phenol increases. The pretreatment of the amino-functional silane coupling agent on phenol shows lots of advantages over the previous methods. From the viewpoint of the process, the homogeneous dispersion of the coupling agent can be obtained with consistency, and the possibility of white gel formation can also be completely removed by it. From the perspective of properties, through a controlled pretreatment on phenol resin, better mechanical properties of EMC can be obtained than those through the pretreatment on epoxy. In addition, the pretreatment process on phenol is simple and feasible for mass production. (c) 2006 Wiley Periodicals, Inc.
机译:氨基官能硅烷偶联剂是环氧模塑化合物(EMC)的重要组分,已通过多种方法使用,例如将其整体添加到混合粉末中并在二氧化硅或树脂上进行预处理。但是,氨基官能硅烷偶联剂在混合粉末中的均匀分散受到整体添加的限制,并且由于硅胶与偶联剂的聚集,形成白色凝胶的可能性有时会在转移成型过程中引起浇口堵塞代理无法完全将其删除。已经采用在二氧化硅上对氨基官能硅烷偶联剂进行预处理作为替代方法,但是该方法昂贵且在批量生产中受到限制。尽管某些EMC制造公司也已对树脂上的偶联剂进行了另一种预处理,但鲜为人知,应该对树脂相,环氧树脂或固化剂,硅烷偶联剂进行预处理以提高EMC的机械性能。 。在这项研究中,已经研究了氨基官能硅烷偶联剂在环氧或酚醛树脂(EMC的重要组成部分)上的预处理,根据预处理过程中的反应以及根据不同的预处理方法对EMC的性能进行了研究。在对环氧树脂进行预处理的情况下,氨基官能的硅烷偶联剂通过开环反应与环氧迅速形成加合物,而其烷氧基则得到很好的保存。通过在环氧树脂上进行预处理,EMC的玻璃化转变温度和弯曲强度要比在苯酚上进行预处理时的低。据认为,由于预先通过与环氧的不可逆反应将氨基丙基三乙氧基硅烷(APTS)限制在环氧基质中,因此树脂基质与二氧化硅之间的键合度降低。在对苯酚进行预处理的情况下,假定偶联剂中的大多数烷氧基被质子亲核试剂(如苯酚)取代,生成等量的醇。由于苯酚和氨基官能硅烷偶联剂之间的加合物在制造过程中易于再生,因此认为APTS在苯酚上的预处理方法有助于APTS在EMC中很好地分散。实际上,通过在苯酚上进行预处理的方法,EMC的玻璃化转变温度和弯曲强度要比通过整体添加法和在环氧树脂上进行预处理的EMC的玻璃化温度和弯曲强度要高。然而,它们随着硅烷与苯酚的反应程度的增加而降低。氨基官能硅烷偶联剂在苯酚上的预处理显示出优于现有方法的许多优点。从该方法的观点来看,可以均匀地获得偶联剂的均匀分散,并且也可以完全消除形成白色凝胶的可能性。从性能的角度来看,通过在酚醛树脂上进行受控的预处理,与通过在环氧树脂上进行预处理相比,可以获得更好的EMC机械性能。此外,苯酚的预处理工艺简单易行,可批量生产。 (c)2006年Wiley Periodicals,Inc.

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