Novel approaches for lithium extraction from salt-lake brines: A review

被引:312
作者
Liu, Gui [1 ,2 ]
Zhao, Zhongwei [1 ]
Ghahreman, Ahmad [2 ]
机构
[1] Cent S Univ, Sch Met & Environm, Changsha 410083, Hunan, Peoples R China
[2] Queens Univ, Robert M Buchan Dept Min, 25 Union St, Kingston, ON K7L 3N6, Canada
关键词
Lithium extraction; Salt-Lake brines; Solvent extraction; Ionic liquids; Ion-sieves; Electrochemical approach; Battery systems; Membrane electrodialysis; LIQUID-LIQUID-EXTRACTION; ALKALI-METAL IONS; METHYL ISOBUTYL KETONE; SOLVENT-EXTRACTION; TRIBUTYL-PHOSPHATE; MANGANESE OXIDE; SELECTIVE ADSORPTION; ISOTOPE-SEPARATION; RECOVERING LITHIUM; NANOFILTRATION MEMBRANE;
D O I
10.1016/j.hydromet.2019.05.005
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Due to the abundant reserves and increasing demand, the extraction and separation of lithium from salt-lake brines have attracted great interest worldwide. This review aims to summarize the major developments in lithium recovery from brines, starting from an overview of lithium demand and consumption, available resources and processing methods, and challenges of processing brines, followed with the advancements in solvent extraction, ion-sieve adsorption, electrochemical approaches, and membrane technology, successively. The paper focuses on the principles, mechanisms, operations, and comparison of the various approaches. Other promising techniques, such as the modification of ion-sieves, rocking-chair batteries, and liquid-membrane electrodialysis, also are discussed in the depth of mechanisms. These processes present excellent performance in the separation of Li+/Mg2+ or Li+/Na+. Finally, insights into the directions and prospects of lithium extraction from brines are presented. It can be concluded that only by integrating the advantages of various recent technologies will it be possible to develop an efficient, low cost, environmentally sustainable, and scalable process for lithium extraction from brines.
引用
收藏
页码:81 / 100
页数:20
相关论文
共 204 条
[111]   COMPOSITE REVERSE-OSMOSIS AND NANOFILTRATION MEMBRANES [J].
PETERSEN, RJ .
JOURNAL OF MEMBRANE SCIENCE, 1993, 83 (01) :81-150
[112]   Nano-sized transition-metaloxides as negative-electrode materials for lithium-ion batteries [J].
Poizot, P ;
Laruelle, S ;
Grugeon, S ;
Dupont, L ;
Tarascon, JM .
NATURE, 2000, 407 (6803) :496-499
[113]   Separation of lithium from sodium in chloride solutions using SSX systems with LIX 54 and Cyanex 923 [J].
Pranolo, Yoko ;
Zhu, Zhaowu ;
Cheng, Chu Yong .
HYDROMETALLURGY, 2015, 154 :33-39
[114]  
Ritcey G.M., 2006, Tsinghua Science Technology, V11, P137, DOI DOI 10.1016/S1007-0214(06)70168-7
[115]   Ionic liquids - Solvents of the future? [J].
Rogers, RD ;
Seddon, KR .
SCIENCE, 2003, 302 (5646) :792-793
[116]  
Roskill, 2018, LITHIUM MARKET OUTLO, P2017
[117]   Single step synthesis of a magnesium doped lithium manganese oxide ion sieve nanomaterial and a SPES/ion sieve composite membrane for the separation of lithium [J].
Saravaia, Hitesh ;
Gupta, Hariom ;
Kulshrestha, Vaibhav .
RSC ADVANCES, 2016, 6 (108) :106980-106989
[118]   The surface structure of the proton-exchanged lithium manganese oxide spinels and their lithium-ion sieve properties [J].
Sato, K ;
Poojary, DM ;
Clearfield, A ;
Kohno, M ;
Inoue, Y .
JOURNAL OF SOLID STATE CHEMISTRY, 1997, 131 (01) :84-93
[119]   EXTRACTION OF LITHIUM FROM NEUTRAL SALT-SOLUTIONS WITH FLUORINATED BETA-DIKETONES [J].
SEELEY, FG ;
BALDWIN, WH .
JOURNAL OF INORGANIC & NUCLEAR CHEMISTRY, 1976, 38 (05) :1049-1052
[120]   Designing high-energy lithium-sulfur batteries [J].
Seh, Zhi Wei ;
Sun, Yongming ;
Zhang, Qianfan ;
Cui, Yi .
CHEMICAL SOCIETY REVIEWS, 2016, 45 (20) :5605-5634