化学
磷酸铁锂
水溶液
再生(生物学)
羟胺
电化学
无机化学
退火(玻璃)
磷酸盐
降级(电信)
硫酸盐
锂(药物)
过程(计算)
材料科学
化学工程
可持续能源
硫酸铁
磷酸铁
储能
作者
Xuejing Qiu,Peixiang Gao,Huan Wang,Leiyuan Lu,Pengbo Zhou,Lei Wang,Qing Han,Lingling Xie,Limin Zhu,Xiaoyu Cao
标识
DOI:10.1021/acssuschemeng.5c10969
摘要
Lithium iron phosphate batteries are widely adopted because of their cost-effectiveness. However, the large-scale recycling of these batteries is constrained by the economic and safety challenges posed by existing recycling technologies. Here, a sustainable and universal strategy based on low-temperature aqueous relithiation is proposed for LFP regeneration utilizing hydroxylamine sulfate as a mediator. The enhanced reductive environment created by hydroxylamine sulfate significantly lowers the Li+ migration energy barrier to lithium vacancies and enhances the repair of FeLi antisite defects at a reduced temperature of 40 °C, simplifying the operational process substantially. By combination with a short annealing step, the Li loss and structural degradation in LFP are effectively mitigated, enabling further restoration of electrochemical performance. Notably, the results of in situ X-ray diffraction (XRD) during the lithiation process reveal that the final step of complete lattice repair is a critical factor in controlling the lithium replenishment process. Furthermore, this process exhibits integration, sustainability, and universality, thereby overcoming the barriers to transitioning direct recycling from lab-scale to industrial applications.
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