Pritzker School of Molecular Engineering, University of Chicago, Chicago, IL 60637.
Proc Natl Acad Sci U S A. 2022 Aug 2;119(31):e2200751119. doi: 10.1073/pnas.2200751119. Epub 2022 Jul 25.
The lithium supply issue mainly lies in the inability of current mining methods to access lithium sources of dilute concentrations and complex chemistry. Electrochemical intercalation has emerged as a highly selective method for lithium extraction; however, limited source compositions have been studied, which is insufficient to predict its applicability to the wide range of unconventional water sources (UWS). This work addresses the feasibility and identifies the challenges of Li extraction by electrochemical intercalation from UWS, by answering three questions: 1) Is there enough Li in UWS? 2) How would the solution compositions affect the competition of Li to major ions (Na/Mg/K/Ca)? 3) Does the complex solution composition affect the electrode stability? Using one-dimensional olivine FePO as the model electrode, we show the complicated roles of major ions. Na acts as the competitor ion for host storage sites. The competition from Na grants Mg and Ca being only the spectator ions. However, Mg and Ca can significantly affect the charge transfer of Li and Na, therefore affecting the Li selectivity. We point to improving the selectivity of Li to Na as the key challenge for broadening the minable UWS using the olivine host.
锂供应问题主要在于当前的采矿方法无法获取低浓度和复杂化学性质的锂资源。电化学嵌入法作为一种高选择性的锂提取方法已经出现,但研究的源成分有限,不足以预测其对广泛的非常规水源 (UWS) 的适用性。这项工作通过回答三个问题,研究了从 UWS 通过电化学嵌入提取锂的可行性和面临的挑战:1)UWS 中是否有足够的锂?2)溶液成分如何影响锂与主要离子(Na/Mg/K/Ca)的竞争?3)复杂溶液成分是否会影响电极稳定性?我们使用一维橄榄石 FePO 作为模型电极,展示了主要离子的复杂作用。Na 作为宿主存储位的竞争离子。来自 Na 的竞争使得 Mg 和 Ca 只能作为旁观离子。然而,Mg 和 Ca 可以显著影响 Li 和 Na 的电荷转移,从而影响 Li 的选择性。我们指出,提高 Li 对 Na 的选择性是使用橄榄石宿主拓宽可开采 UWS 的关键挑战。