Literature DB >> 29929287

Lithium recovery from brines: A vital raw material for green energies with a potential environmental impact in its mining and processing.

Victoria Flexer1, Celso Fernando Baspineiro2, Claudia Inés Galli3.   

Abstract

The electrification of our world is driving a strong increase in demand for lithium. Energy storage is paramount in electric and hybrid vehicles, in green but intermittent energy sources, and in smart grids in general. Lithium is a vital raw material for the build-up of both currently available lithium-ion batteries, and prospective next generation batteries such as lithium-air and lithium sulphur. The continued availability of lithium can only rely on a strong increase of mining and ore processing. It would be an inconsistency if the increased production of lithium for a more sustainable society would be associated with non-sustainable mining practices. Currently 2/3 of the world production of lithium is extracted from brines, a practice that evaporates on average half a million litres of brine per ton of lithium carbonate. Furthermore, the extraction is chemical intensive, extremely slow, and delivers large volumes of waste. This technology is heavily dependent on the geological structure of the deposits, brine chemical composition and both climate and weather conditions. Therefore, it is difficult to adapt from one successful exploitation to new deposits. A few years of simulations and piloting are needed before large scale production is achieved. Consequently, this technology is struggling with the current surge in demand. At time of writing, only 5 industrial scale facilities are in operation worldwide, highlighting the shortcomings in this technology. Both mining companies and academics are intensively searching for new technologies for lithium recovery from brines. However, focus on the chemistry of brine processing has left unattended the analysis of the sustainability of the overall process. Here we review both the current available technology and new proposed methodologies. We make a special focus on an overall sustainability analysis, with particular emphasis to the geological characteristics of deposits and water usage in relation to mining processes.
Copyright © 2018 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Aquifer; Batteries; Brine deposits; Lithium; Magnesium; Sustainable mining

Year:  2018        PMID: 29929287     DOI: 10.1016/j.scitotenv.2018.05.223

Source DB:  PubMed          Journal:  Sci Total Environ        ISSN: 0048-9697            Impact factor:   7.963


  12 in total

1.  Climate change and lithium mining influence flamingo abundance in the Lithium Triangle.

Authors:  Jorge S Gutiérrez; Johnnie N Moore; J Patrick Donnelly; Cristina Dorador; Juan G Navedo; Nathan R Senner
Journal:  Proc Biol Sci       Date:  2022-03-09       Impact factor: 5.349

2.  Engineering Li/Na selectivity in 12-Crown-4-functionalized polymer membranes.

Authors:  Samuel J Warnock; Rahul Sujanani; Everett S Zofchak; Shou Zhao; Theodore J Dilenschneider; Kalin G Hanson; Sanjoy Mukherjee; Venkat Ganesan; Benny D Freeman; Mahdi M Abu-Omar; Christopher M Bates
Journal:  Proc Natl Acad Sci U S A       Date:  2021-09-14       Impact factor: 11.205

Review 3.  Recent Advances in the Lithium Recovery from Water Resources: From Passive to Electrochemical Methods.

Authors:  Luisa Baudino; Cleis Santos; Candido F Pirri; Fabio La Mantia; Andrea Lamberti
Journal:  Adv Sci (Weinh)       Date:  2022-07-27       Impact factor: 17.521

4.  Policies for Material Circularity: the Case of Lithium.

Authors:  Diana Roa; Knut Einar Rosendahl
Journal:  Circ Econ Sustain       Date:  2022-05-17

5.  LiFePO4 Battery Material for the Production of Lithium from Brines: Effect of Brine Composition and Benefits of Dilution.

Authors:  Sara Pérez-Rodríguez; Samuel D S Fitch; Philip N Bartlett; Nuria Garcia-Araez
Journal:  ChemSusChem       Date:  2021-11-24       Impact factor: 9.140

6.  Comparison of three different bioleaching systems for Li recovery from lepidolite.

Authors:  J Sedlakova-Kadukova; R Marcincakova; A Luptakova; M Vojtko; M Fujda; P Pristas
Journal:  Sci Rep       Date:  2020-09-03       Impact factor: 4.379

7.  A Comprehensive Membrane Process for Preparing Lithium Carbonate from High Mg/Li Brine.

Authors:  Wenhua Xu; Dongfu Liu; Lihua He; Zhongwei Zhao
Journal:  Membranes (Basel)       Date:  2020-11-26

8.  Perspectives and design considerations of capillary-driven artificial trees for fast dewatering processes.

Authors:  Jongho Lee
Journal:  Sci Rep       Date:  2021-04-21       Impact factor: 4.379

9.  Crown-Ether Functionalized Graphene Oxide Membrane for Lithium Recovery from Water.

Authors:  Luisa Baudino; Alessandro Pedico; Stefano Bianco; Monica Periolatto; Candido Fabrizio Pirri; Andrea Lamberti
Journal:  Membranes (Basel)       Date:  2022-02-18

10.  Biomineralization of lithium nanoparticles by Li-resistant Pseudomonas rodhesiae isolated from the Atacama salt flat.

Authors:  N Bruna; E Galliani; P Oyarzún; D Bravo; F Fuentes; J M Pérez-Donoso
Journal:  Biol Res       Date:  2022-03-16       Impact factor: 5.612

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