利用h2o基深共晶溶剂优先回收废旧磷酸铁锂电池中的锂

Yinghua Zhang, Juanjian Ru, Yixin Hua, Mingqiang Cheng, Lianwu Lu, Ding Wang
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摘要

磷酸铁锂(LFP)电池的使用日益增加,引发了人们对其环境影响和回收挑战的担忧,尤其是锂的回收。在此,我们提出了一种利用h2o基深共晶溶剂(DESs)从废LFP正极材料中优先回收Li和精确分离Fe和P的新策略。通过调整金属配合物的形态和沉淀方式,在氯化choline -无水草酸-水(ChCl-OA-H2O) DES中,Li和Fe的溶出率达到99.95%以上,回收率分别为93.41%和97.40%。对浸出和回收过程中主要参数的影响进行了全面研究。阐明了预处理后LFP的回收机理,确定了非均相溶出反应的控速步骤。结果表明:焙烧预处理后形成Li3Fe2(PO4)3和Fe2O3的可溶相,且在浸出过程中Li(I)离子倾向于与C2O42−形成Li2C2O4沉淀,可优先回收纯度为99.82%的Li;经紫外-可见光照射后,Fe(III)离子转化为Fe(II)离子,Fe(II)离子可通过调节H2O含量与C2O42−反应生成FeC2O4沉淀,P回收为Na3PO4∙12H2O(纯度99.98%)。提出了废DES的回收方案,经过三次循环后,其浸出和回收性能仍保持稳定。该方法为DESs中废旧LFP电池优先回收Li和精确分离Fe、P提供了一种工艺简单、效率高、无废的回收方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Priority Recovery of Lithium From Spent Lithium Iron Phosphate Batteries via H2O-Based Deep Eutectic Solvents

Priority Recovery of Lithium From Spent Lithium Iron Phosphate Batteries via H2O-Based Deep Eutectic Solvents

The growing use of lithium iron phosphate (LFP) batteries has raised concerns about their environmental impact and recycling challenges, particularly the recovery of Li. Here, we propose a new strategy for the priority recovery of Li and precise separation of Fe and P from spent LFP cathode materials via H2O-based deep eutectic solvents (DESs). Through adjusting the form of the metal complexes and precipitation mode, above 99.95% Li and Fe can be dissolved in choline chloride-anhydrous oxalic acid-water (ChCl-OA-H2O) DES, and the high recovery efficiency of Li and Fe about 93.41% and 97.40% accordingly are obtained. The effects of the main parameters are comprehensively investigated during the leaching and recovery processes. The recovery mechanism of the pretreated LFP is clarified and the rate-controlling step of the heterogeneous dissolution reactions is also identified. Results show that soluble phases of Li3Fe2(PO4)3 and Fe2O3 are formed after roasting pretreatment, and Li(I) ions tend to form Li2C2O4 precipitates with C2O42− during the leaching process so that Li can be recovered preferentially in purity of 99.82%. After UV-visible light irradiation, Fe(III) ions are converted into Fe(II) ions, which can react with C2O42− to form FeC2O4 precipitates by adjusting the H2O content, and P is recovered as Na3PO4∙12H2O (99.98% purity). Additionally, a plan for the recycling of used DES is proposed and the leaching and recovery performances still maintain stable after three recycling circles. The method offers an approach with a simple process, high efficiency, and waste-free recycling for priority recovery Li and precise separation of Fe and P from spent LFP batteries in DESs.

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