用离子液体萃取碳氢化合物。

IF 55.8 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Gangqiang Yu, Chengna Dai*, Ning Liu, Ruinian Xu, Ning Wang and Biaohua Chen, 
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引用次数: 0

摘要

分离和反应过程是现代化学工业中使用的关键组成部分,前者占化学工业能耗的绝大部分。特别是碳氢化合物的分离和提纯过程,如芳烃萃取、脱硫和脱硝,在石油精炼中具有挑战性,而石油精炼是为人类活动中使用的产品提供原材料的工业基石。溶剂萃取的主要技术缺陷是溶剂挥发损失、产品夹带导致二次污染、分离效率低,以及由于使用高沸点的传统有机溶剂作为萃取剂而导致的高再生能耗。离子液体(ILs)是一类可设计的功能性溶剂或材料,经过近 30 年的快速发展,已广泛应用于化学分离过程中,取代了传统的有机溶剂。在此,我们将系统、全面地综述离子液体在烃类萃取分离(即芳烃萃取、脱硫和脱硝)领域的最新进展,包括:(i) 离子液体体系的分子热力学模型,该模型可快速大规模筛选候选离子液体并预测萃取过程的相平衡;(ii) 离子液体的阴离子和阳离子结构与其分离性能(即选择性和分配系数)之间的结构-性质关系;(iii) 离子液体在烃类萃取分离中的应用;(iv) 离子液体在烃类萃取分离中的应用;(v) 离子液体在烃类萃取分离中的应用、选择性和分配系数)之间的结构-性质关系;(iii) 与 IL 相关的萃取分离机理(例如,分子间相互作用的大小、强度和位点取决于分离系统和 IL 结构);以及 (iv) 基于经过验证的热力学模型的工业规模 IL 相关萃取的工艺模拟和设计。总之,本综述从分子、热力学和工艺流程的多尺度视角,为烃类混合物的 IL 相关萃取分离提供了易于阅读的详尽参考。此外,它还扩展了该研究领域在惰性烃类似物、深共晶溶剂 (DES) 方面的进展,并讨论了当前惰性烃在相关分离领域所面临的挑战以及未来的发展方向和机遇。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Hydrocarbon Extraction with Ionic Liquids

Hydrocarbon Extraction with Ionic Liquids

Hydrocarbon Extraction with Ionic Liquids

Separation and reaction processes are key components employed in the modern chemical industry, and the former accounts for the majority of the energy consumption therein. In particular, hydrocarbon separation and purification processes, such as aromatics extraction, desulfurization, and denitrification, are challenging in petroleum refinement, an industrial cornerstone that provides raw materials for products used in human activities. The major technical shortcomings in solvent extraction are volatile solvent loss, product entrainment leading to secondary pollution, low separation efficiency, and high regeneration energy consumption due to the use of traditional organic solvents with high boiling points as extraction agents. Ionic liquids (ILs), a class of designable functional solvents or materials, have been widely used in chemical separation processes to replace conventional organic solvents after nearly 30 years of rapid development. Herein, we provide a systematic and comprehensive review of the state-of-the-art progress in ILs in the field of extractive hydrocarbon separation (i.e., aromatics extraction, desulfurization, and denitrification) including (i) molecular thermodynamic models of IL systems that enable rapid large-scale screening of IL candidates and phase equilibrium prediction of extraction processes; (ii) structure–property relationships between anionic and cationic structures of ILs and their separation performance (i.e., selectivity and distribution coefficients); (iii) IL-related extractive separation mechanisms (e.g., the magnitude, strength, and sites of intermolecular interactions depending on the separation system and IL structure); and (iv) process simulation and design of IL-related extraction at the industrial scale based on validated thermodynamic models. In short, this Review provides an easy-to-read exhaustive reference on IL-related extractive separation of hydrocarbon mixtures from the multiscale perspective of molecules, thermodynamics, and processes. It also extends to progress in IL analogs, deep eutectic solvents (DESs) in this research area, and discusses the current challenges faced by ILs in related separation fields as well as future directions and opportunities.

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来源期刊
Chemical Reviews
Chemical Reviews 化学-化学综合
CiteScore
106.00
自引率
1.10%
发文量
278
审稿时长
4.3 months
期刊介绍: Chemical Reviews is a highly regarded and highest-ranked journal covering the general topic of chemistry. Its mission is to provide comprehensive, authoritative, critical, and readable reviews of important recent research in organic, inorganic, physical, analytical, theoretical, and biological chemistry. Since 1985, Chemical Reviews has also published periodic thematic issues that focus on a single theme or direction of emerging research.
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