大分子聚丙烯酸钠对深共晶溶剂合成的聚乙烯醇缩丁醛的分子结构和性能的影响

Xiaolu Lv, Yumeng Zhang, Fengtao Li, Xuelian He
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摘要

聚丙烯酸钠(PAAS)是一种高分子表面活性剂,被用于以深共晶溶剂(DES)为催化剂合成聚乙烯醇缩丁醛(PVB)。与传统的低分子量表面活性剂相比,扫描电子显微镜(SEM)分析证实 PAAS 提高了 PVB 颗粒的均匀性,同时最大程度地减少了 PAAS 的残留,有利于生产出透明度和耐黄变性能优异的薄膜。对不同分子量、PAAS 用量和老化时间对 PVB 性能影响的研究表明,PAAS 分子量的增加会相应地提高 PVB 的缩醛度(AD),而不会影响 PVB 本身的分子量。此外,PAAS 的用量对 PVB 的性能影响很大,而老化时间对 PVB 的 AD 影响很小。1H-NMR 分析表明,PVB 结构的稳定性是由于中间缩醛异构体占主导地位,当使用含 91.5% 六亚甲基环缩醛的 PAAS3(分子量为 60,000 g/mol)合成 PVB 时,PVB 的机械性能得到了改善。值得注意的是,与使用十二烷基硫酸钠(SDS)合成的 PVB 相比,使用 PAAS3 合成的 PVB 具有更优越的机械性能,拉伸强度和伸长率都有显著提高。SEM 图像进一步阐明了这一现象。将优化后的自制 PVB 与商用 PVB 进行比较后发现,自制 PVB 的性能更好,这凸显了大分子 PAAS 在增强 PVB 结构和机械性能方面的关键作用。
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Effect of macromolecular sodium polyacrylate on the molecular structure and properties of polyvinyl butyral synthesized deep eutectic solvent
Sodium polyacrylate (PAAS), a macromolecule surfactant, was employed in the synthesis of polyvinyl butyral (PVB) using a deep eutectic solvent (DES) as the catalyst. Contrasting with traditional low molecular weight surfactants, scanning electron microscopy (SEM) analysis has confirmed that PAAS enhanced the uniformity of PVB granules while minimizing PAAS residuals, facilitating the production of films with superior transparency and resistance to yellowing. Investigations into the effects of varying molecular weights, dosages of PAAS, and aging times on the properties of PVB revealed that an increase in PAAS molecular weight correspondingly raised the acetal degree (AD) of PVB without affecting the molecular weight of PVB itself. Furthermore, yhe dosage of PAAS significantly impacted the properties of PVB, whereas aging time exhibits minimal influence on the AD of PVB. 1H‐NMR analysis indicated that the structural stability of PVB is due to the dominance of meso acetal isomers, which improved its mechanical properties when synthesized with PAAS3 (molecular weight 60,000 g/mol), containing 91.5% hexamethylene cycloacetal. Notably, compared to PVB synthesized using sodium dodecyl sulphate (SDS), PVB synthesized with PAAS3 exhibits superior mechanical properties, with significantly improved tensile strength and elongation. This phenomenon is further elucidated by SEM images. A comparison between the optimized self‐made PVB and commercial PVB shows that the self‐made PVB performs better, highlighting the critical role of macromolecular PAAS in enhancing the structure and mechanical properties of PVB.
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