重新审视 PEG 磷酸盐水性双相体系中诱导相分离的驱动力

IF 3.3 3区 化学 Q2 CHEMISTRY, PHYSICAL Faraday Discussions Pub Date : 2024-04-23 DOI:10.1039/d4fd00058g
Sophie Bonnassieux, Raj Pandya, Dhyllan Adan Skiba, Damien Degoulange, Dorothee Petit, Peter Seem, Russell Cowburn, Betar M Gallant, Alexis Jules Louis Grimaud
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引用次数: 0

摘要

使用水性双相系统(ABS)进行液相分离被广泛应用于大分子的萃取、分离和纯化等工业流程中。以水为单一溶剂,多种溶质(包括聚合物、离子液体或盐类)被用于诱导相分离。对于每种体系(聚合物-聚合物、聚合物-离子液体、聚合物-盐或盐-盐),都提出了不同的驱动力来诱导相分离。具体而言,对于聚合物-盐体系,有人提出富聚合物和富盐之间的溶解结构存在差异,而其他报告则认为伴随相分离的是焓和熵的巨大变化。在此,我们结合液相核磁共振(NMR)和高分辨率拉曼光谱以及注射微量热仪,对 PEG/K2HPO4/H2O 系统进行了重新研究。核磁共振和拉曼光谱均显示富含 PEG 的相中水的浓度降低了,但在 1H 化学位移或 OH 伸缩振动方面没有观察到明显的差异。因此,PEG 相和富盐相具有相似的水溶解特性,这并不是导致相分离的驱动力。此外,核磁共振还显示,在富含 PEG 的溶液中,PEG 与盐离子相互作用,随着盐浓度的增加而产生下场偏移。我们还进行了注射微量热测量,以研究混合过程中焓变化的影响。然而,这些测量结果表明,与之前盐-盐体系或两种溶剂混合时的焓变相比,PEG-富盐溶液混合时的焓变非常小。因此,除了溶解特性的巨大差异之外,我们的研究还排除了 PEG/K2HPO4 系统相分离的焓变化过大的可能性。
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Revisiting the driving force inducing phase separation in PEG-phosphate aqueous biphasic systems
Liquid phase separation using aqueous biphasic systems (ABS) is widely used in industrial processes for the extraction, separation and purification of macromolecules. Using water as the single solvent, a wide variety of solutes have been used to induce phase separation including polymers, ionic liquids or salts. For each system - polymer-polymer, polymer-ionic liquid, polymer-salt or salt-salt - different driving forces were proposed to induce phase separation. Specifically, for polymer-salt systems, a difference in solvation structure between the polymer-rich and the salt-rich was proposed, while other reports suggested that a large change in enthalpy and entropy accompanied the phase separation. Here, we reinvestigated the PEG/K2HPO4/H2O systems using a combination of liquid-phase nuclear magnetic resonance (NMR) and high-resolution Raman spectroscopies, coupled with injection microcalorimetry. Both NMR and Raman reveal a decreased water concentration in the PEG-rich phase, with nonetheless no significant differences observed for both 1H chemical shift or OH stretching vibrations. Hence, both PEG- and salt-rich phases exhibit similar water solvation properties, which is thus not the driving force for phase separation. Furthermore, NMR reveals a that PEG interacts with salt ions in the PEG-rich solution, inducing a downfield shift with increasing salt concentration. Injection microcalorimetry measurements were carried out to investigate any effect due to enthalpy change during mixing. Nevertheless, these measurements indicate very small enthalpy changes when mixing PEG- and salt-rich solutions in comparison with that previously recorded for salt-salt systems or associated with mixing of two solvents. Hence, our study discards any large change of enthalpy as the origin for phase separation of PEG/K2HPO4 systems, in addition to large difference in solvation properties.
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Faraday Discussions
Faraday Discussions 化学-物理化学
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期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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