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Advances in Organic Solvent Nanofiltration Rely on Physical Chemistry and Polymer Chemistry

机译:依靠物理化学和高分子化学的有机溶剂纳米过滤研究进展

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摘要

The vast majority of industrial chemical synthesis occurs in organic solution. Solute concentration and solvent recovery consume ~50% of the energy required to produce chemicals and pose problems that are as relevant as the synthesis process itself. Separation and purification processes often involve a phase change and, as such, they are highly energy-intensive. However, novel, energy-efficient technologies based on polymer membranes are emerging as a viable alternative to thermal processes. Despite organic solvent nanofiltration (OSN) could revolutionize the chemical, petrochemical, food and pharmaceutical industry, its development is still in its infancy for two reasons: (i) the lack of fundamental knowledge of elemental transport phenomena in OSN membranes, and (ii) the instability of traditional polymer materials in chemically challenging environments. While the latter issue has been partially solved, the former was not addressed at all. Moreover, the few data available about solute and solvent transport in OSN membranes are often interpreted using inappropriate theoretical tools, which contributes to the spread of misleading conclusions in the literature. In this review we provide the state of the art of organic solvent nanofiltration using polymeric membranes. First, theoretical models useful to interpret experimental data are discussed and some misleading conclusions commonly reported in the literature are highlighted. Then, currently available materials are reviewed. Finally, materials that could revolutionize OSN in the future are identified. Among the possible applications of OSN, isomers separation could open a new era in chemical engineering and polymer science in the years to come.
机译:绝大多数工业化学合成都发生在有机溶液中。溶质浓度和溶剂回收消耗了生产化学药品所需的约50%的能量,并产生了与合成过程本身相关的问题。分离和纯化过程通常涉及相变,因此它们是高能耗的。然而,基于聚合物膜的新型节能技术正在出现,可以替代热处理。尽管有机溶剂纳滤(OSN)可以彻底改变化学,石化,食品和制药行业,但其发展仍处于起步阶段,其原因有两个:(i)缺乏OSN膜中元素迁移现象的基本知识,以及(ii)传统聚合物材料在化学挑战性环境中的不稳定性。虽然后一个问题已得到部分解决,但前一个问题根本没有解决。而且,关于溶质和溶剂在OSN膜中传输的可用数据很少,通常使用不适当的理论工具来解释,这有助于在文献中散布误导性结论。在这篇综述中,我们提供了使用聚合物膜进行有机溶剂纳米过滤的最新技术。首先,讨论了可用于解释实验数据的理论模型,并突出了一些文献中常见的误导性结论。然后,审查当前可用的材料。最后,确定了将来可能会改变OSN的材料。在OSN的可能应用中,异构体分离将在未来几年内开启化学工程和聚合物科学的新纪元。

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