Wan Zhixin, Liu Ziqi, Xiao Yiyang, Ruan Qinqin, Wang Qian, Zhang Haitao, Yao Meng, Zhang Yun
College of Materials Science and Engineering, Sichuan University, Chengdu, 610064, P. R. China.
Beijing Key Laboratory of Ionic Liquids Clean Process, Institute of Process Engineering, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
Small. 2025 Jan;21(3):e2406607. doi: 10.1002/smll.202406607. Epub 2024 Oct 4.
The electrochemical deintercalation method has been considered as an effective way to address the demand for lithium resources due to its environmental friendliness, high selectivity, and high efficiency. However, the performance of electrochemical lithium extraction is closely dependent on the electrode material and needs to be compatible under plateau environments with high-altitude and low-temperature. Herein, an in situ self-oxidation method is conducted to construct a hybrid conductive network on the surface of LiFePO (LFP-HN). The introduction of a hybrid conductive network enhanced the interfacial electron/lithium-ion transfer. In addition, structural stability is strengthened through suppressing the intercalation of impurity cations. Consequently, the LFP-HN delivered extremely high lithium extraction capacity (27.42 mg g), low energy consumption (4.91 Wh mol), and superior purity (91.05%) in Baqiancuo real brine (4788 m, -10 °C). What's more, LFP-HN-based large-scale prototypes are constructed and operated at Baqiancuo, which is calculated to extract 25 kg Lithium Carbonate Equivalent per cycle (4.55 h, 100 pairs of plates). Based on the excellent performance, the modification strategy developed in this work can be a promising solution for industrial lithium extraction under high-altitude environment.
由于其环境友好、选择性高和效率高,电化学脱嵌法被认为是满足锂资源需求的有效途径。然而,电化学锂提取的性能紧密依赖于电极材料,并且需要在高海拔和低温的高原环境下具备兼容性。在此,采用原位自氧化法在LiFePO(LFP-HN)表面构建混合导电网络。混合导电网络的引入增强了界面电子/锂离子转移。此外,通过抑制杂质阳离子的嵌入来强化结构稳定性。因此,LFP-HN在八千米错实际卤水(海拔4788米,-10°C)中展现出极高的锂提取容量(27.42毫克/克)、低能耗(4.91瓦时/摩尔)和优异的纯度(91.05%)。更重要的是,基于LFP-HN构建的大规模原型在八千米错进行了运行,经计算每循环(4.55小时,100对极板)可提取25千克碳酸锂当量。基于优异的性能,本工作中开发的改性策略可能成为高海拔环境下工业锂提取的一种有前景的解决方案。