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首页> 外文期刊>Macromolecular chemistry and physics >Crystallization of poly(ethylene terephthalate) in poly(ethylene terephthalate)/bisphenol a polycarbonate block copolymers: Influence of block length and role of the rubbery amorphous component
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Crystallization of poly(ethylene terephthalate) in poly(ethylene terephthalate)/bisphenol a polycarbonate block copolymers: Influence of block length and role of the rubbery amorphous component

机译:聚对苯二甲酸乙二醇酯/双酚A聚碳酸酯嵌段共聚物中聚对苯二甲酸乙二醇酯的结晶:嵌段长度和橡胶态无定形组分作用的影响

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Analysis was made of the crystallization of the PET blocks in PET/PC copolymers as a function of the block length, varying from M-n = 5300 to 17100 g . mol(-1) (X-n PET = 28-89, PET monomeric sequences). Analysis was also made of a series of PET homopolymers with the same R, values. The copolymers were found to crystallize at a slower rate, with lower crystallinity and lower crystal perfection, than the homopolymers and secondary crystallization does not take place, unlike with PET homopolymers. However the crystallization mechanism is the same. The plot of the crystallization rate versus X,, PET shows that the homopolymers have a maximum crystallization rate at X-n PET congruent to 50 (M-n congruent to 10000 g . mol(-1)), whereas the crystallization rate for copolymers continuously increases with the increment Of Xn PET (see Figure). The decrement of the crystallization rate for homopolymers with 19, higher than 10000 g . mol(-1) has been interpreted as due to the effect of the high melt viscosity. For copolymers with long PET blocks, instead, a phase separation is likely and improves the PET reptation and fold, causing increment in crystallization rate. Block size and miscibility between the components are therefore the key parameters in understanding the crystallization process in PET/PC block copolymers.
机译:分析了PET / PC共聚物中PET嵌段的结晶随嵌段长度的变化,M-n = 5300至17100 g。 mol(-1)(X-n PET = 28-89,PET单体序列)。还分析了一系列具有相同R i值的PET均聚物。与PET均聚物不同,发现该共聚物以比均聚物更低的结晶速率和更低的结晶度和更低的晶体完美度结晶,并且不会发生二次结晶。但是,结晶机理是相同的。结晶速率与X,PET的关系图表明,均聚物在Xn PET等于50(Mn等于10000 g。mol(-1))时具有最大结晶速率,而共聚物的结晶速率则随Xn PET增量(见图)。 19的均聚物的结晶速率降低,高于10000 g。 mol(-1)被认为是由于高熔体粘度的影响。相反,对于具有长PET嵌段的共聚物,可能会发生相分离,并改善PET的析出和折叠,从而导致结晶速率增加。因此,嵌段大小和组分之间的可混溶性是理解PET / PC嵌段共聚物结晶过程的关键参数。

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