Electrified Enhanced Recovery of Lithium from Unconventional Sources.

IF 1.1 4区 化学 Q3 CHEMISTRY, MULTIDISCIPLINARY Chimia Pub Date : 2024-12-18 DOI:10.2533/chimia.2024.845
Harris E Kohl, Carlos A Larriuz, Andrew Ezazi, Mohammed Al-Hashimi, Hassan S Bazzi, Sarbajit Banerjee
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Abstract

Demand for lithium is expected to quadruple by the end of the decade. Without new sources of production, the supply-demand curve is expected to invert. Traditional geological reserves will not be able to meet the anticipated gap, thus unconventional sources of lithium will need to be utilized, setting the stage for fierce competition for perhaps the most critical of mineral resources required for the energy transition. Direct Lithium Extraction refers to the umbrella of technologies being developed to access lithium from unconventional sources. Electrochemical extraction offers significant promise for its selectivity and low operating cost when coupled with renewable energy. This review aims to describe materials and process design considerations for electrochemical extraction of lithium from aqueous sources with a specific emphasis on ζ-V2O5 designed in our research group as an insertion host. We point to specific strategies for improving capacity and selectivity for electrochemical lithium extraction based on materials design across length scales. Strategies range from site-selective modification of insertion hosts to controlled tortuosity of ion diffusion pathways in porous electrode architectures. Electrochemical lithium extraction from unconventional sources stands poised to be a linchpin of a sustainable economy when coupled with cleaning of wastewater, hydrogen generation, and recovery of ancillary critical metals.

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电气化提高非常规资源锂的采收率。
到2020年,锂的需求预计将翻两番。如果没有新的生产来源,供需曲线预计会倒转。传统的地质储量将无法满足预期的缺口,因此需要利用非常规的锂资源,为能源转型所需的可能最关键的矿产资源的激烈竞争奠定了基础。直接锂提取是指从非常规资源中获取锂的一系列技术。电化学萃取以其选择性和低运行成本与可再生能源相结合而具有重要的应用前景。本综述旨在描述电化学从水溶液中提取锂的材料和工艺设计考虑因素,特别强调我们研究组设计的作为插入宿主的ζ-V2O5。我们指出了具体的策略,以提高容量和选择性的电化学锂提取基于材料设计跨长度尺度。策略范围从插入主体的选择性修改到控制多孔电极结构中离子扩散途径的扭曲。从非常规资源中电化学提取锂,与废水清洁、制氢和辅助关键金属回收相结合,将成为可持续经济的关键。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chimia
Chimia 化学-化学综合
CiteScore
1.60
自引率
0.00%
发文量
144
审稿时长
2 months
期刊介绍: CHIMIA, a scientific journal for chemistry in the broadest sense covers the interests of a wide and diverse readership. Contributions from all fields of chemistry and related areas are considered for publication in the form of Review Articles and Notes. A characteristic feature of CHIMIA are the thematic issues, each devoted to an area of great current significance.
期刊最新文献
Editorial. Electrified Enhanced Recovery of Lithium from Unconventional Sources. Intermetallic Materials for High-Capacity Hydrogen Storage Systems. Intermolecular Interactions and their Implications in Solid-State Photon Interconversion. Overview of Tacticity Control in Radical Polymerization.
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