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Recycling spent lithium-ion battery as adsorbents to remove aqueous heavy metals: Adsorption kinetics, isotherms, and regeneration assessment

机译:作为吸附剂回收废锂离子电池以除去含水重金属:吸附动力学,等温物和再生评估

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摘要

Proper disposal and resource recovery of spent batteries are crucial for environmental protection and sustainability. This study evaluated the adsorption performances of spent lithium iron phosphate (SLFP) and spent lithium manganate (SLMO) cathodes as adsorbents toward heavy metals in water. The effects of adsorption time, initial adsorbate concentrations, and co-existing ions on adsorption kinetics were examined. SLFP and SLMO demonstrated outstanding adsorption capacities for heavy metals that were higher than or comparable with other reported adsorbents. SLFP shows adsorption capacities of 44.28, 39.54, 25.63, and 27.34 mg g(-1) for Cu2+, Pb2+, Cd2+ and Zn2+, respectively, SLMO achieved similar adsorption capacities (32.51, 31.83, 26.24 and 25.25 mg g(-1), respectively). Among different adsorption kinetics model, the pseudo-second-order model described heavy metals adsorption kinetics best with R-2 over 0.99, implying that chemisorption may be the predominant adsorption mechanism. The adsorption data at equilibrium well fitted the Langmuir isotherm model with R-2 over 0.96, suggesting that the adsorption process could be endothermic. Cathode materials from of SLIBs may be recycled as adsorbents for heavy metal removal from water, which supports the "waste to treat waste" concept
机译:花电池的适当处置和资源回收对于环境保护和可持续性至关重要。该研究评估了废铁磷酸盐(SLFP)和锰酸锂(SLMO)阴极作为水中的重金属的吸附性能。检测吸附时间,初始吸附浓度和共存离子对吸附动力学的影响。 SLFP和SLMO对高于或与其他报道的吸附剂相比的重金属显示出卓越的吸附能力。 SLFP分别显示44.28,39.54,25.63和27.34mg g(-1)的吸附容量,分别为SLMO,SLMO实现了相似的吸附容量(32.51,31.83,26.24和25.25mg g(-1),分别)。在不同的吸附动力学模型中,伪二阶模型描述了重金属吸附动力学最佳,R-2超过0.99,暗示化学可能是主要吸附机制。平衡井的吸附数据适用于朗米尔等温模型,R-2超过0.96,表明吸附过程可能是吸热的。来自Slibs的阴极材料可以作为吸附剂作为吸附剂,用于从水中去除,这支持“废物处理废物”概念

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