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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Morphology evolution in solution polymerized styrene-butadiene rubber (SSBR)/trans-1,4-polyisoprene (TPI) blends: SSBR particle formation, TPI crystal nucleation, growth and polymorphic form
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Morphology evolution in solution polymerized styrene-butadiene rubber (SSBR)/trans-1,4-polyisoprene (TPI) blends: SSBR particle formation, TPI crystal nucleation, growth and polymorphic form

机译:溶液聚合苯乙烯 - 丁二烯橡胶(SSBR)/反式1,4-聚异戊二烯(TPI)共混物的形态演化:SSBR颗粒形成,TPI晶体成核,生长和多态形式

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摘要

In this work, the combined effects of polydispersity and viscosity on microstructure that evolves with domain coarsening and crystallization are investigated in the blends of amorphous solution polymerized styrene-butadiene rubber (SSBR) and crystalline trans-1,4-polyisoprene (TPI). We find that the bicontinuous patterns in SSBR/TPI undergo a complicated coarsening process and evolve to microstructures where high density SSBR drops are trapped in TPI-rich domains after the secondary phase separation, which is the result of the hydrodynamic difference between TPI components with different molecular weights and the viscosity difference between SSBR and TPI. Domain interface assists crystallization by acting as the substrate for the static heterogeneous nucleation. Although TPI spherulites preferentially grow in TPI-rich domains with SSBR drops in-situ included in crystals, they still could cross over SSBR-rich phases. Owing to the polydispersity of TPI, phase separation driving low-molecular-weight TPI assembling in TPI-rich domains enables the predominant formation of polymorphic (alpha-TPI by lowering the crystallization energy barrier. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在这项工作中,在非晶溶液聚合苯乙烯 - 丁二烯橡胶(SSBR)的共混物中,研究了多分散性和粘度对微观结构的组织和粘度的组合作用。我们发现SSBR / TPI中的双周末图案经历了复杂的粗化过程,并在二次相分离后捕获高密度SSBR下降的微观结构,这是TPI组件与不同的TPI组件之间的水动力学差异的显微结构SSBR和TPI之间的分子量和粘度差异。域界面通过用作静态异质成核的基材来助使结晶。尽管TPI球晶素优先于TPI的富含TPI的域中生长,但SSBR下降在晶体中出于原位,它们仍然可以通过SSBR的阶段交叉。由于TPI的多分散性,驱动富含TPI的域中的低分子量TPI的相分离使得多晶型(通过降低结晶能屏障来形成多态的主要形成。(c)2017年Elsevier Ltd.保留所有权利。

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