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How Chain Intermixing Dictates the Polymorphism of PVDF in Poly(vinylidene fluoride)/Polymethylmethacrylate Binary System during Recrystallization: A Comparative Study on Core–Shell Particles and Latex Blend

机译:链间混合如何决定重结晶过程中聚偏二氟乙烯/聚甲基丙烯酸甲酯二元体系中PVDF的多态性:核-壳颗粒与胶乳共混物的比较研究

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摘要

In the past few decades, Poly(vinylidene fluoride)/Polymethylmethacrylate (PVDF/PMMA) binary blend has attracted substantial attention in the scientific community due to possible intriguing mechanical, optical and ferroelectric properties that are closely related to its multiple crystal structures/phases. However, the effect of PMMA phase on the polymorphism of PVDF, especially the relationship between miscibility and polymorphism, remains an open question and is not yet fully understood. In this work, three series of particle blends with varied levels of miscibility between PVDF and PMMA were prepared via seeded emulsion polymerization: PVDF–PMMA core–shell particle (PVDF@PMMA) with high miscibility; PVDF/PMMA latex blend with modest miscibility; and PVDF@c–PMMA (crosslinked PMMA) core–shell particle with negligible miscibility. The difference in miscibility, and the corresponding morphology and polymorphism were systematically studied to correlate the PMMA/PVDF miscibility with PVDF polymorphism. It is of interest to observe that the formation of polar β/γ phase during melt crystallization could be governed in two ways: dipole–dipole interaction and fast crystallization. For PVDF@PMMA and PVDF/PMMA systems, in which fast crystallization was unlikely triggered, higher content of β/γ phase, and intense suppression of crystallization temperature and capacity were observed in PVDF@PMMA, because high miscibility favored a higher intensity of overall dipole–dipole interaction and a longer interaction time. For PVDF@c–PMMA system, after a complete coverage of PVDF seeds by PMMA shells, nearly pure β/γ phase was obtained owing to the fast homogeneous nucleation. This is the first report that high miscibility between PVDF and PMMA could favor the formation of β/γ phase.
机译:在过去的几十年中,聚偏二氟乙烯/聚甲基丙烯酸甲酯(PVDF / PMMA)二元共混物由于可能具有与其多种晶体结构/相密切相关的机械,光学和铁电性质,因此在科学界引起了广泛关注。然而,PMMA相对PVDF多态性的影响,特别是混溶性和多态性之间的关系,仍然是一个悬而未决的问题,尚未得到充分理解。在这项工作中,通过种子乳液聚合制备了三种在PVDF和PMMA之间具有不同混溶度的颗粒共混物系列:高溶混度的PVDF-PMMA核-壳颗粒(PVDF @ PMMA); PVDF / PMMA乳胶混合物具有适度的混溶性;与PVDF @ c–PMMA(交联的PMMA)核壳颗粒的混溶性可忽略不计。系统地研究了混溶性的差异以及相应的形态和多态性,以将PMMA / PVDF的混溶性与PVDF多态性相关联。有趣的是,可以通过两种方式控制熔融结晶过程中极性β/γ相的形成:偶极-偶极相互作用和快速结晶。对于PVDF @ PMMA和PVDF / PMMA系统,不可能触发快速结晶,在PVDF @ PMMA中观察到较高的β/γ相含量,并强烈抑制结晶温度和容量,因为高混溶性有利于提高整体强度偶极-偶极相互作用和更长的相互作用时间。对于PVDF @ c–PMMA系统,PMMA壳完全覆盖了PVDF种子后,由于快速均匀的成核作用,获得了几乎纯的β/γ相。这是第一个报道,PVDF与PMMA之间的高度可混溶性可能有助于形成β/γ相。

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