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Entanglement and phase separation in hyperbranched polymer/linear polymer/solvent ternary blends

机译:超支化聚合物/线性聚合物/溶剂三元共混物中的缠结和相分离

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Hyperbranched polyethylene (HBPE)/linear polystyrene (PS)/chloroform (CF) solution was selected as a model system to investigate the effect of branching structure on entanglement and phase separation behavior in semi-dilute ternary polymer solutions. All the HBPE materials in this work were found to have similar chain architectures and the critical molecular weight was estimated to be 81.2 kDa. The results obtained by elastic light scattering and intrinsic fluorescence methods suggested that all ternary solutions exhibited UCST transition behavior upon cooling. Also, it was found that the increase in the molecular weight of PS led to increase in the phase separation rate, consistent with de Gennes prediction. However, the increase of molecular weight of HBPE did not monotonously reduce the compatibility of polymer components and the phase separation rate in ternary blends is as follows: medium molecular weight HBPE (HBPE-M) > high molecular weight HBPE (HBPE-H) > low molecular weight HBPE (HBPE-L). This abnormal behavior can be explained by the fact that, (i) for HBPE-L, no entanglements between HBPE chains occurred and the branching effect can be ignored, and (ii) for HBPE-M and HBPE-H, entanglement of HBPE chains can be formed, and the dilution of branches on entanglement of backbones should be taken into consideration, that is, the shorter the branches of HBPE, the higher the possibility of interpenetration of HBPE backbones between neighboring molecules and, consequently, the faster aggregation of HBPE during phase separation. Furthermore, a simple model based on decomposition reaction was proposed to quantitatively describe the phase separation kinetics and the apparent activation energies of phase separation were calculated to be -150.3 and -52.3 kJ/mol for HBPE-M/PS/CF and HBPE-H/PS/CF systems, respectively.
机译:选择超支化聚乙烯(HBPE)/线性聚苯乙烯(PS)/氯仿(CF)溶液作为模型系统,以研究支化结构对半稀释三元聚合物溶液中缠结和相分离行为的影响。发现这项工作中所有的HBPE材料都具有相似的链结构,并且估计的临界分子量为81.2 kDa。通过弹性光散射和固有荧光方法获得的结果表明,所有三元溶液在冷却时均表现出UCST跃迁行为。另外,发现PS分子量的增加导致相分离速率的增加,这与de Gennes的预测一致。但是,HBPE分子量的增加并不会单调降低聚合物组分的相容性,三元共混物中的相分离率如下:中分子量HBPE(HBPE-M)>高分子量HBPE(HBPE-H)>低分子量HBPE(HBPE-L)。可以通过以下事实来解释这种异常行为:(i)对于HBPE-L,HBPE链之间没有发生纠缠并且分支效应可以忽略,并且(ii)对于HBPE-M和HBPE-H,HBPE链发生了纠缠可以形成,并且应考虑主链缠结上的分支稀释度,即HBPE的分支越短,相邻分子之间HBPE主链互穿的可能性越高,因此HBPE的聚集更快在相分离过程中。此外,提出了一个基于分解反应的简单模型来定量描述相分离动力学,对于HBPE-M / PS / CF和HBPE-H,相分离的表观活化能被计算为-150.3和-52.3 kJ / mol。 / PS / CF系统。

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