Investigation on the fast phase transition mechanism of flow-induced oriented iPB-1†

IF 2.8 3区 化学 Q3 CHEMISTRY, PHYSICAL Soft Matter Pub Date : 2025-03-06 DOI:10.1039/D5SM00019J
Lincheng Ji, Heng Zhang, Youxin Ji, Fengmei Su and Chuntai Liu
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Abstract

The phase transition mechanism of isotactic polybutene-1 (iPB-1) has always been a central research topic in the fields of polymer physics and industrial application. Phase transition kinetics of the flow-induced oriented form II is significantly faster than the isotropic form II that crystallizes under quiescent condition. In this study, combining the in situ X ray diffraction technique and a homemade extensional rheometer, the influence of amorphous region on the transformation kinetics was been investigated. Results indicated that annealing above the melting temperature (Tm) decreased the phase transition rate, while annealing below the Tm exhibited no obvious impact on the phase transition rate when the annealing time was only 5 min. However, prolonging the annealing time significantly reduced the phase transition kinetics. Remarkably, the crystallinity remained constant during the annealing process, while it exhibited an increase during the subsequent cooling process. The SAXS measurements showed that long spacing decreased after annealing. It is speculated that extended chains in the amorphous region are relaxed and shortened during the annealing process. This work recommends the rapid cooling of iPB-1 products in industrial manufacturing to prevent the relaxation of amorphous chains and promote the phase transition process.

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流动诱导取向iPB-1快速相变机理研究。
等规聚丁烯-1 (iPB-1)的相变机理一直是高分子物理和工业应用领域的研究热点。流动诱导取向型II的相变动力学明显快于在静态条件下结晶的各向同性型II。本研究结合原位X射线衍射技术和自制拉伸流变仪,研究了非晶区对相变动力学的影响。结果表明,高于熔点(Tm)的退火降低了相变速率,低于熔点(Tm)的退火在5 min时对相变速率没有明显影响,但延长退火时间显著降低了相变动力学。值得注意的是,在退火过程中结晶度保持不变,而在随后的冷却过程中结晶度有所增加。SAXS测量结果表明,退火后长间距减小。推测非晶区延伸链在退火过程中被松弛和缩短。本工作建议在工业制造中对iPB-1产品进行快速冷却,以防止非晶链的松弛并促进相变过程。
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来源期刊
Soft Matter
Soft Matter 工程技术-材料科学:综合
CiteScore
6.00
自引率
5.90%
发文量
891
审稿时长
1.9 months
期刊介绍: Soft Matter is an international journal published by the Royal Society of Chemistry using Engineering-Materials Science: A Synthesis as its research focus. It publishes original research articles, review articles, and synthesis articles related to this field, reporting the latest discoveries in the relevant theoretical, practical, and applied disciplines in a timely manner, and aims to promote the rapid exchange of scientific information in this subject area. The journal is an open access journal. The journal is an open access journal and has not been placed on the alert list in the last three years.
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