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Recovery of cobalt, lithium, and manganese from the cathode active materials of spent lithium-ion batteries in a bio-electro-hydrometallurgical process

机译:在生物电气 - 液压冶金工艺中从Continod锂离子电池的阴极活性材料中恢复钴,锂和锰

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This work focuses on constructing a bio-electro-hydrometallurgical platform to efficiently recover cobalt (Co), lithium (Li), and manganese (Mn) from the cathode active materials (CAMs) of spent lithium batteries. A bioleaching process and selective adsorption by PC-88A/TOA-modified granular activated carbon were both incorporated into an electrokinetics approach to achieve excellent recycling performance. The technical feasibility was comprehensively investigated in terms of four aspects, including the domestication of microorganisms, the evaluation of the bioleaching process, the equilibrium adsorption of the adsorbent, and the electrokinetic recovery. Potential sulfur-oxidizing bacteria were screened and domesticated to a high concentration of pyrite pulp. The voltage gradient and the remediation time both had obvious influences on the recovery of the target elements in the electrokinetic process. Maximum recoveries of 91.45%, 93.64% and 87.92% for Co, Li, and Mn, respectively, were achieved from the CAMs of spent lithium-ion batteries via the electrokinetics process. The indirect oxidation of pyrite provided the necessary reductants for the platform. The transformation of sulfur (S) to H2SO4 as a result of bio-oxidation by bacteria strains supplied additional H+ ions to facilitate the reduction reaction, and acid dissolution mitigated the drawbacks caused by the uneven distribution of pH in the electrokinetics process.
机译:这项工作侧重于构建生物电热液冶金平台,以有效地回收来自锂电池的阴极活性材料(凸轮)的钴(CO),锂(Li)和锰(Mn)。通过PC-88A / TOA改性粒状活性炭的生物浸出过程和选择性吸附均掺入电动机构方法中以实现优异的回收性能。在四个方面,全面调查了技术可行性,包括微生物的驯化,对生物浸入过程的评价,吸附剂的平衡吸附和电动恢复。将潜在的硫氧化细菌筛选并驯化至高浓度的吡啶纸浆。电压梯度和修复时间都对电动过程中的目标元素的恢复具有明显的影响。通过电动工艺从废锂离子电池的凸轮中分别实现了CO,Li和Mn的最大回收率为91.45%,93.64%和87.92%。黄铁矿间接氧化为平台提供了必要的还原剂。由于通过细菌菌株的生物氧化而转化为H 2 SO 4的转化,供应额外的H +离子,以促进还原反应,并且酸溶解减轻了电动过程中pH的不均匀分布引起的缺点。

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