Shahid Mohamed, Sahadevan Suchithra Ashoka, Ramani Vijay, Sankarasubramanian Shrihari
Department of Biomedical Engineering and Chemical Engineering, University of Texas at San Antonio, San Antonio, TX 78249, USA.
Department of Chemical Engineering, University of Petroleum and Energy Studies, Dehradun, 248007, India.
ChemSusChem. 2025 Feb 1;18(3):e202401205. doi: 10.1002/cssc.202401205. Epub 2024 Nov 1.
We recommend best practices for the recovery of cobalt from LiCoO (LCO) lithium-ion battery (LIB) cathodes by (i) leaching using green deep eutectic solvents (DES) and (ii) subsequent electrodeposition, through a case study of the choline chloride (ChCl):ethylene glycol (EG) DES. DES physical properties (conductivity, viscosity, and surface tension) were tailored by varying the composition between mole ratios of 1 : 2 and 1 : 5 (ChCl:EG). Examined along with leaching process parameters (temperature, duration), increasing the fraction of hydrogen bond donors (HBDs) decreased DES surface tension and enhanced leaching. Complete Co recovery was achieved using 1 : 5 ChCl:EG DES at 160 °C and 48 h. Leaching temperatures >160 °C are discouraged due to DES thermal degradation. The electrodeposition process was optimized for selective Co recovery with high faradaic efficiency. The leaching ability of the DES was antithetical to the stability of electrodeposition cell components and required operational parameter adjustment to minimize degradation. The optimized system (copper cathode and stainless-steel anode) employing 1 : 5 DES leachate exhibited a faradaic efficiency of ~80 %, specific Co recovery of ~0.8 mg hr cm at 50 °C and evidence of uniform deposition. DES surface tension is a key descriptor of metal recovery, and guidelines are presented to maximize selective Co recovery.
通过一个关于氯化胆碱(ChCl):乙二醇(EG)低共熔溶剂(DES)的案例研究,我们推荐了从LiCoO(LCO)锂离子电池(LIB)阴极中回收钴的最佳实践方法,即(i)使用绿色低共熔溶剂(DES)进行浸出,以及(ii)随后进行电沉积。通过改变摩尔比在1:2至1:5(ChCl:EG)之间的组成来调整DES的物理性质(电导率、粘度和表面张力)。在研究浸出工艺参数(温度、持续时间)时发现,增加氢键供体(HBDs)的比例会降低DES的表面张力并提高浸出效果。使用1:5的ChCl:EG DES在160°C和48小时的条件下实现了钴的完全回收。由于DES的热降解,不建议浸出温度>160°C。对电沉积过程进行了优化,以实现具有高法拉第效率的选择性钴回收。DES的浸出能力与电沉积电池组件的稳定性相反,需要调整操作参数以尽量减少降解。采用1:5 DES浸出液的优化系统(铜阴极和不锈钢阳极)在50°C时法拉第效率约为80%,特定钴回收率约为0.8 mg hr cm,并且有均匀沉积的证据。DES表面张力是金属回收的关键指标,并给出了最大化选择性钴回收的指导方针。