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深共晶溶剂作为燃料油脱硫过程中非传统多功能介质。

Deep eutectic solvents as non-traditionally multifunctional media for the desulfurization process of fuel oil.

机构信息

Green Chemistry Centre, College of Chemistry and Chemical Engineering, Yantai University, 30 Qingquan Road, Yantai 264005, Shandong, China.

School of Chemistry and Chemical Engineering, Shanxi University, Taiyuan 030006, China.

出版信息

Phys Chem Chem Phys. 2021 Jan 21;23(2):785-805. doi: 10.1039/d0cp05153e.

Abstract

Deep eutectic solvents (DESs) have been intensively pursued in the field of separation processes, catalytic reactions, polymers, nanomaterial science, and sensing technologies due to their unique features such as the low cost of components, ease of preparation, tunable physicochemical properties, negligible vapor pressure, non-toxicity, renewability, and biodegradability in the recent decade. Considering these appealing merits, DESs are widely used as extraction agents, solvents and/or catalysts in the desulfurization process since 2013. This review is focused on summarizing the physicochemical properties of DESs (i.e., freezing point, density, viscosity, ionic conductivity, acidity, hydrophilicity/hydrophobicity, polarity, surface tension, and diffusion) to some extent, and their significant advances in applications related to desulfurization processes such as extraction desulfurization, extraction-oxidation desulfurization, and biomimetic desulfurization. In particular, we systematically compile very recent works concerning the selective aerobic oxidation desulfurization (AODS) under extremely mild conditions (60 °C and ambient pressure) via a biomimetic approach coupling DESs with polyoxometallates (POMs). In this system, DESs act as multifunctional roles such as extraction agents, solvents, and catalysts, while POMs serve as electron transfer mediators. This strategy is inspirational since biomimetic or bioinspired catalysis is the "Holy Grail" of oxidation catalysis, which overcomes the difficulty of O2 activation via introducing electron transfer mediators into this system. It not only can be used for AODS, but also paves a novel way for oxidation catalysis, such as the selective oxyfunctionalization of hydrocarbon. Eventually, the conclusion, current challenges, and future opportunities are discussed. The aim is to provide necessary guidance for precisely designing tailor-made DESs, and to inspire chemists to use DESs as a powerful platform in the field of catalysis science.

摘要

近十年来,由于深共晶溶剂(DESs)具有成本低、制备简单、物理化学性质可调、蒸气压低、无毒、可再生和可生物降解等独特性质,在分离过程、催化反应、聚合物、纳米材料科学和传感技术等领域得到了广泛的研究。考虑到这些吸引人的优点,自 2013 年以来,DESs 广泛用作脱硫过程中的萃取剂、溶剂和/或催化剂。本综述重点总结了 DESs 的物理化学性质(如冰点、密度、粘度、离子电导率、酸度、亲水性/疏水性、极性、表面张力和扩散),并对其在与脱硫过程相关的应用中的重要进展进行了综述,如萃取脱硫、萃取-氧化脱硫和仿生脱硫。特别是,我们系统地编译了最近关于通过仿生方法将 DESs 与多金属氧酸盐(POMs)结合用于在极其温和的条件(60°C 和环境压力)下进行选择性有氧氧化脱硫(AODS)的工作。在该体系中,DESs 起到了萃取剂、溶剂和催化剂等多种作用,而 POMs 则作为电子转移介体。该策略具有启发性,因为仿生或生物灵感催化是氧化催化的“圣杯”,通过向该体系中引入电子转移介体克服了 O2 活化的困难。它不仅可用于 AODS,而且为氧化催化开辟了一条新途径,如烃类的选择性有氧官能化。最后,讨论了结论、当前的挑战和未来的机会。目的是为精确设计定制的 DESs 提供必要的指导,并激发化学家将 DESs 作为催化科学领域的强大平台。

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