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清洁工艺与应用中的甲磺酸(MSA):教程综述

Methanesulfonic acid (MSA) in clean processes and applications: a tutorial review.

作者信息

Binnemans Koen, Jones Peter Tom

机构信息

KU Leuven, Department of Chemistry Celestijnenlaan 200F P.O. box 2404 B-3001 Heverlee Belgium

KU Leuven, Department of Materials Engineering Kasteelpark Arenberg 44 bus 2450 B-3001 Heverlee Belgium.

出版信息

Green Chem. 2024 Jun 27;26(15):8583-8614. doi: 10.1039/d4gc02031f. eCollection 2024 Jul 29.

Abstract

This Tutorial Review acquaints chemists and metallurgists with the properties and industrial applications of methanesulfonic acid (MSA, CHSOH). Over the past quarter-century, MSA has garnered increasing interest as a reagent for green chemistry due to its strong acidity, while circumventing many of the challenges associated with handling concentrated sulfuric acid, hydrochloric acid, or nitric acid. Concentrated MSA is a non-oxidizing reagent, exhibiting high chemical stability against redox reactions and hydrolysis, as well as high thermal stability and limited corrosivity towards construction materials. It is colorless, odorless, and possesses a very low vapor pressure. MSA combines commendable biodegradability with low toxicity. It is extensively utilized as a Brønsted acid catalyst for esterification or alkylation reactions, and is employed in biodiesel production. The high solubility of its metal salts, the high electrical conductivity of its concentrated solutions, coupled with the high electrochemical stability of MSA and its anion, make MSA-based electrolytes beneficial in electrochemical applications. Examples include the electrodeposition of tin-lead solder for electronic applications and the high-speed plating of tin on steel plate for food cans. MSA-based electrolytes are used in redox flow batteries (RFBs). MSA offers a much safer and environmentally friendlier alternative to electrolytes based on fluoroboric or fluorosilicic acid. A novel application area is as a strong acid in extractive metallurgy, where it may contribute to the development of circular hydrometallurgy. MSA is being explored in lithium-ion battery recycling flowsheets, as well as in other applications in the field of metal recovery and refining. However, this review is not solely about the advantages of MSA for green chemistry or clean technologies, as there are also some potential drawbacks. Apart from its higher price compared to regular strong acids, MSA has only minor advantages for applications where sulfuric acid performs well. Since methanesulfonate biodegrades into sulfate, the same emission restrictions as for sulfate should be considered. In conclusion, MSA is the acid of choice for applications where metal sulfates cannot be used due to poor solubility or where concentrated sulfuric acid is too reactive towards organics.

摘要

本教程综述使化学家和冶金学家了解甲磺酸(MSA,CH₃SO₃H)的性质及工业应用。在过去的四分之一个世纪里,甲磺酸因其强酸性作为绿色化学试剂受到越来越多的关注,同时避免了处理浓硫酸、盐酸或硝酸所带来的许多挑战。浓甲磺酸是一种非氧化性试剂,对氧化还原反应和水解表现出高化学稳定性,以及高热稳定性和对建筑材料的有限腐蚀性。它无色、无味,蒸气压极低。甲磺酸具有良好的生物降解性和低毒性。它被广泛用作酯化或烷基化反应的布朗斯特酸催化剂,并用于生物柴油生产。其金属盐的高溶解度、浓溶液的高电导率,以及甲磺酸及其阴离子的高电化学稳定性,使得基于甲磺酸的电解质在电化学应用中具有优势。例如,用于电子应用的锡铅焊料的电沉积以及用于食品罐头的钢板上锡的高速电镀。基于甲磺酸的电解质用于氧化还原液流电池(RFB)。与基于氟硼酸或氟硅酸的电解质相比,甲磺酸提供了一种更安全、更环保的替代品。一个新的应用领域是在萃取冶金中作为强酸,它可能有助于循环湿法冶金的发展。甲磺酸正在锂离子电池回收流程以及金属回收和精炼领域的其他应用中进行探索。然而,本综述并非只关注甲磺酸在绿色化学或清洁技术方面的优势,因为也存在一些潜在的缺点。除了与常规强酸相比价格较高外,甲磺酸在硫酸性能良好的应用中只有微小优势。由于甲磺酸盐会生物降解为硫酸盐,应考虑与硫酸盐相同的排放限制。总之,对于因溶解度差而不能使用金属硫酸盐或浓硫酸对有机物反应性过强的应用,甲磺酸是首选的酸。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7cdc/11284624/9815e6330f53/d4gc02031f-f1.jpg

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