烘烤
泥浆
浸出(土壤学)
电化学
锂长石
材料科学
电极
锂(药物)
萃取(化学)
电解质
石灰
法拉第效率
化学工程
钝化
无机化学
冶金
溶解
卤水
碳酸盐
环境友好型
磷酸钒锂电池
储能
化学
废物管理
作者
Andrew Z. Haddad,Hyungyeon Cha,Sahand Adibnia,Xander B. Fleming,Liam McDonough,Floria Li,Siva Rama Satyam Bandaru,Raynald Giovine,Chaochao Dun,Garrett Pohlman,Lukas Hackl,Bilen Aküzüm,Jeffrey J. Urban,Robert Kostecki
标识
DOI:10.1021/acs.est.5c11515
摘要
Lithium extraction from clay deposits is typically hampered by low lithium grades and the high capital and energy demands of conventional processing. We report an ambient temperature electrochemical leaching method that bypasses high-temperature roasting and concentrated-acid leaching, directly liberating 93% of lithium from low-grade hectorite in 24 h at 1 V, with 77% Faradaic efficiency, an energy intensity of 3.91 MWh/t lithium carbonate equivalent (LCE). Utilizing a carbon-mineral composite slurry electrode strategy we achieve electron-driven lattice deconstruction through iron oxidation coupled with proton uptake to drive lithium deintercalation, offering a new strategy for low-temperature critical-metal recovery. A preliminary cost analysis highlights pathways to achieving cost intensities below $3000/t LCE. Challenges remain in improving current density, extraction kinetics, and demonstrating process scalability, however, this work establishes a foundation for effective electrochemical lithium extraction from abundant but previously uneconomical clay deposits.
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