Diffusion Channel Engineering of Spinel Cathodes for Selective Lithium Extraction from Low-Grade Brine.

Qiao, Yixuan; Zhang, Houjun; Nian, Yao; Li, Yuqi; Xiao, Changwei; Wang, Tiantian; Wang, Yang; Wen, Mingjian et al. · ACS Nano · 2025

basic_science · Level V

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Abstract

The surging demand for lithium to power electric vehicles and grid-scale energy storage highlights the urgent need for sustainable extraction from unconventional resources, such as low-grade salt lake brines. Electrochemical lithium extraction offers an energy-efficient pathway, yet its progress is constrained by the limited selectivity and poor durability of the cathode material, such as LiMn<sub>2</sub>O<sub>4</sub> (LMO). Here, we demonstrate that Nb doping effectively tunes the three-dimensional Li<sup>+</sup> diffusion channels of LMO, simultaneously lowering the Mn valence, enlarging the lattice constant, and strengthening the Mn-O framework. The structural optimization delivers a discharge capacity of 107 mAh g<sup>-1</sup> and markedly reduces the Li<sup>+</sup> diffusion resistance, thereby lowering the energy consumption of lithium extraction (4.83 Wh mol<sup>-1</sup>). In highly complex Qarhan brine with an extremely high ratio of competing ions, Nb-doped LMO exhibits considerable Li<sup>+</sup> extraction capacity (5.21 mmol g<sup>-1</sup> in Qarhan raw brine and 3.79 mmol g<sup>-1</sup> in Qarhan old brine), superior Li<sup>+</sup> selectivity (Li<sup>+</sup>/Mg<sup>2+</sup> = 48.47 and Li<sup>+</sup>/Na<sup>+</sup> = 44.42), and enhanced cyclic stability (Li<sup>+</sup> intercalation capacity retention 72.09% after 50 cycles). Depth-resolved TOF-SIMS and DFT analyses reveal that the broadened diffusion channels suppress bulk diffusion of Na<sup>+</sup> and Mg<sup>2+</sup> while reducing the Li<sup>+</sup> migration barrier, underpinning the high selectivity. These results suggest that Nb-doped LMO is a robust and scalable cathode for electrochemical lithium extraction, offering a viable strategy to unlock lithium from low-grade brines.