Methanesulfonic Acid (MSA) in Hydrometallurgy

被引:37
作者
Binnemans, Koen [1 ]
Jones, Peter Tom [2 ]
机构
[1] Katholieke Univ Leuven, Dept Chem, Celestijnenlaan 200F, POB 2404, B-3001 Heverlee, Belgium
[2] Katholieke Univ Leuven, Dept Mat Engn, Kasteelpark Arenberg 44, POB 2450, B-3001 Heverlee, Belgium
关键词
Electrometallurgy; Extractive metallurgy; Hydrometallurgy; Leaching; Solution chemistry; RARE-EARTH; FERRIC METHANESULFONATE; MOLECULAR-DYNAMICS; AQUEOUS-SOLUTIONS; JAROSITE RESIDUE; TRIFLIC ACID; LEAD; DISSOLUTION; RECOVERY; METHANE;
D O I
10.1007/s40831-022-00641-6
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This paper reviews the properties of methanesulfonic acid (MSA) and its potential for use in hydrometallurgy. Although MSA is much less known than sulfuric, hydrochloric or nitric acid, it has several appealing properties that makes it very attractive for the development of new circular flowsheets in hydrometallurgy. Unlike other organic acids such as acetic acid, MSA is a very strong acid (pK(a) = - 1.9). In addition, it is very stable against chemical oxidation and reduction, and has no tendency to hydrolyze in water. In terms of its environmental impact, MSA has low toxicity and is biodegradable. In nature, it is part of the geochemical sulfur cycle. A useful property is the high solubility of its salts in water: methanesulfonate salts have a much higher solubility in water than sulfate salts. Additionally, MSA and its salts are compatible with the electrowinning of metals because the anode reaction involves the formation of oxygen gas (unlike chlorine gas formation in chloride electrolytes) and no cathodic reduction of the anion occurs (unlike nitrate reduction in nitrate electrolytes). MSA is particularly interesting for lead hydrometallurgy, where it offers more environment-friendly alternatives to HBF4 and H2SiF6. However, MSA can also be adopted in all hydrometallurgical processes that require strong Bronsted acids. It can be used in the metallurgy of copper, zinc, cobalt, nickel, and rare earths, as well as in the recycling of metals from end-of-life products. Although MSA itself is a non-oxidizing acid, in combination with hydrogen peroxide it yields strongly oxidizing lixiviants that can leach copper from chalcopyrite or dissolve metallic silver. The global production of MSA is expected to increase rapidly in the near future thanks to both the industrialization of a new sustainable synthesis process and its many applications (cleaning fluids, electrolytes for electroplating, redox-flow batteries, catalysts in organic synthesis, and as a solvent for high-molecular-weight polymers). As a result, MSA will become more widely available and a lower price will make it an increasingly attractive option. [GRAPHICS] .
引用
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页码:26 / 45
页数:20
相关论文
共 102 条
[1]   A Comparative Kinetic Study of Chalcopyrite Leaching Using Alternative Oxidants in Methanesulfonic Acid System [J].
Ahn, Junmo ;
Wu, Jiajia ;
Lee, Jaeheon .
MINERAL PROCESSING AND EXTRACTIVE METALLURGY REVIEW, 2022, 43 (03) :390-401
[2]   Investigation on chalcopyrite leaching with methanesulfonic acid (MSA) and hydrogen peroxide [J].
Ahn, Junmo ;
Wu, Jiajia ;
Lee, Jaeheon .
HYDROMETALLURGY, 2019, 187 :54-62
[3]   MICROBIAL-DEGRADATION OF METHANESULFONIC-ACID - A MISSING LINK IN THE BIOGEOCHEMICAL SULFUR CYCLE [J].
BAKER, SC ;
KELLY, DP ;
MURRELL, JC .
NATURE, 1991, 350 (6319) :627-628
[4]   Methane sulphonic acid in electroplating related metal finishing industries [J].
Balaji, R ;
Pushpavanam, M .
TRANSACTIONS OF THE INSTITUTE OF METAL FINISHING, 2003, 81 (05) :154-158
[5]   Leaching characteristics of rare earth elements from coal ash using organosulphonic acids [J].
Banerjee, Riya ;
Chakladar, Saswati ;
Mohanty, Ashok ;
Chattopadhyay, Shyamal Kumar ;
Chakravarty, Sanchita .
MINERALS ENGINEERING, 2022, 185
[6]   Chalcopyrite leaching in novel lixiviants [J].
Barton, Isabel F. ;
Hiskey, J. Brent .
HYDROMETALLURGY, 2022, 207
[7]  
BASF, 2016, LUTR FRINDL ACID PUR
[8]  
BASF, 2019, MIN SOL SOL TM E EFF
[9]   Water-Zinc (Copper) Methanesulfonate Systems: Thermodynamic Properties and Phase Equilibria [J].
Belova, E., V ;
Finkelshteyn, D., I ;
Maksimov, A., I ;
Uspenskaya, I. A. .
RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY A, 2019, 93 (11) :2117-2122
[10]   Solid-liquid phase equilibrium in the water-Zn(II) methanesulfonate and water-Cu(II) methanesulfonate systems [J].
Belova, Ekaterina, V ;
Krasnov, Vladimir S. ;
Ilyukhin, Andrey B. ;
Uspenskaya, Irina A. .
THERMOCHIMICA ACTA, 2018, 668 :46-57