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Tailoring the Thermal and Mechanical Properties of PolyActiveTM Poly(Ether-Ester) Multiblock Copolymers Via Blending with CO2-Phylic Ionic Liquid

机译:通过与二氧化碳离子液体共混来调节PolyActiveTM聚(酯)多嵌段共聚物的热力学性能

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摘要

The last decade has seen an exponential increase in the number of studies focused on novel applications for ionic liquids (ILs). Blends of polymers with ILs have been proposed for use in fuel cells, batteries, gas separation membranes, packaging, etc., each requiring a set of specific physico-chemical properties. In this work, blends of four grades of the poly(ether-ester) multiblock copolymer PolyActive™ with different concentrations of the CO -philic 1-butyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide [BMIM][Tf N] were prepared in the form of dense films by a solution casting and solvent evaporation method, in view of their potential use as gas separation membranes for CO capture. Depending on the polymer structure, the material properties could be tailored over a wide range by means of the IL content. All samples were dry-feeling, highly elastic self-standing dense films. The microstructure of the blends was studied by scanning electron microscopy with a backscattering detector, able to observe anisotropy in the sample, while a special topographic analysis mode allowed the visualization of surface roughness. Samples with the longest poly(ethylene oxide terephthalate) (PEOT) blocks were significantly more anisotropic than those with shorter blocks, and this heterogeneity increased with increasing IL content. DSC analysis revealed a significant decrease in the melting enthalpy and melting temperature of the crystalline PEOT domains with increasing IL content, forming an amorphous phase with ≈ −50 °C, whereas the polybutylene terephthalate (PBT) phase was hardly affected. This indicates better compatibility of the IL with the polyether phase than the polyester phase. Young’s modulus was highest and most IL-dependent for the sample with the highest PEOT content and PEOT block length, due to its high crystallinity. Similarly, the sample with short PEOT blocks and high PBT content also showed a high modulus and tensile strength, but much lower maximum elongation. This study provides a detailed discussion on the correlation between the morphological, thermal, and mechanical properties of these PolyActive™/[BMIM][Tf N] blends.
机译:在过去的十年中,专注于离子液体(ILs)新应用的研究数量呈指数级增长。已经提出将具有IL的聚合物的共混物用于燃料电池,电池,气体分离膜,包装等,每个都需要一组特定的物理化学性质。在这项工作中,制备了四种等级的聚(醚-酯)多嵌段共聚物PolyActive™与不同浓度的亲CO-1-丁基-3-甲基咪唑鎓双(三氟甲基磺酰基)酰亚胺[BMIM] [Tf N]的共混物。考虑到它们可能用作CO捕集的气体分离膜,通过溶液流延和溶剂蒸发法形成致密膜的形式。取决于聚合物结构,可以通过IL含量在很大范围内调整材料性能。所有样品均为干感,高弹性的自立致密薄膜。共混物的微观结构通过使用反向散射检测器的扫描电子显微镜进行了研究,能够观察样品中的各向异性,而特殊的形貌分析模式可以使表面粗糙度可视化。具有最长聚对苯二甲酸乙二醇酯(PEOT)嵌段的样品比具有较短嵌段的样品具有更大的各向异性,并且这种异质性随IL含量的增加而增加。 DSC分析表明,随着IL含量的增加,结晶PEOT域的熔融焓和熔融温度显着降低,形成≈−50°C的非晶相,而聚对苯二甲酸丁二醇酯(PBT)相几乎不受影响。这表明IL与聚醚相的相容性比聚酯相更好。 PEOT含量和PEOT嵌段长度最高的样品的杨氏模量最高,并且与IL相关性最高,这归因于其高结晶度。同样,具有短PEOT嵌段和高PBT含量的样品也显示出高模量和拉伸强度,但最大伸长率低得多。这项研究详细讨论了这些PolyActive™/ [BMIM] [Tf N]共混物的形态,热学和力学性能之间的相关性。

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