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用于锂离子电池回收的溶剂萃取中的低碳足迹稀释剂。

Low-carbon footprint diluents in solvent extraction for lithium-ion battery recycling.

作者信息

Ahamed Aboudaye M, Swoboda Benjamin, Arora Zubin, Lansot Jean Yves, Chagnes Alexandre

机构信息

Université de Lorraine, CNRS, GeoRessources F-54000 Nancy France

TotalEnergy Fluids 2 Place Jean Miller, La Défense Cedex 92078 Paris France.

出版信息

RSC Adv. 2023 Aug 2;13(33):23334-23345. doi: 10.1039/d3ra04679f. eCollection 2023 Jul 26.

Abstract

This study investigated the influence of the diluent on the extraction properties of three extractants towards cobalt(ii), nickel(ii), manganese(ii), copper(ii), and lithium(i), Cyanex® 272 (bis-(2,4,4-trimethylpentyl)phosphinic acid), DEHPA (bis-(2-ethyl hexyl)phosphoric acid), and Acorga® M5640 (alkylsalicylaldehyde oxime). The diluents used in the formulation of the extraction solvents are (i) low-odour aliphatic kerosene produced from the petroleum industry (ELIXORE 180, ELIXORE 230, ELIXORE 205 and ISANE IP 175) and (ii) bio-sourced aliphatic diluents (DEV 2138, DEV 2139, DEV 1763, DEV 2160, DEV 2161 and DEV 2063). No influence of the diluent and no co-extraction of lithium(i), nickel(ii), cobalt(ii), manganese(ii) and aluminum were observed during copper(ii) extraction by Acorga M5640. The nature of the diluent influenced more significantly the extraction properties of manganese(ii) by DEHPA as well as cobalt(ii) and nickel(ii) by Cyanex® 272. Life cycle assessment of the diluents shows that the carbon footprints of the investigated diluents followed the following order: (ELIXORE 180, ELIXORE 230, ELIXORE 205) from petroleum industry > kerosene from petroleum industry > diluent produced from tall oil (DEV 2063) > diluents produced from recycled plastic (DEV 2160, DEV 2161) > diluents produced from used cooking oil (DEV 2138, DEV 2139). By taking into account the physicochemical properties of these diluents (viscosity, flashpoint, aromatic content), the extraction properties of Acorga® M5640, DEHPA, Cyanex® 272 in these diluents and the CO footprint of the diluents, this study showed DEV2063 and DEV2139 were the best diluents. A low-carbon footprint solvent extraction flowsheet using these diluents was proposed to extract selectively cobalt, nickel, manganese, lithium and copper from NMC black mass of spent lithium-ion batteries.

摘要

本研究考察了稀释剂对三种萃取剂萃取钴(II)、镍(II)、锰(II)、铜(II)和锂(I)性能的影响,这三种萃取剂分别为Cyanex® 272(双(2,4,4 - 三甲基戊基)次膦酸)、DEHPA(双(2 - 乙基己基)磷酸)和Acorga® M5640(烷基水杨醛肟)。用于配制萃取溶剂的稀释剂有:(i)石油工业生产的低气味脂肪族煤油(ELIXORE 180、ELIXORE 230、ELIXORE 205和ISANE IP 175)以及(ii)生物源脂肪族稀释剂(DEV 2138、DEV 2139、DEV 1763、DEV 2160、DEV 2161和DEV 2063)。在使用Acorga M5640萃取铜(II)的过程中,未观察到稀释剂的影响,也未观察到锂(I)、镍(II)、钴(II)、锰(II)和铝的共萃取现象。稀释剂的性质对DEHPA萃取锰(II)以及Cyanex® 272萃取钴(II)和镍(II)的性能影响更为显著。稀释剂的生命周期评估表明,所研究稀释剂的碳足迹遵循以下顺序:石油工业生产的(ELIXORE 180、ELIXORE 230、ELIXORE 205)>石油工业生产的煤油>妥尔油生产的稀释剂(DEV 2063)>回收塑料生产的稀释剂(DEV 2160、DEV 2161)>废食用油生产的稀释剂(DEV 2138、DEV 2139)。综合考虑这些稀释剂的物理化学性质(粘度、闪点、芳烃含量)、Acorga® M5640、DEHPA、Cyanex® 272在这些稀释剂中的萃取性能以及稀释剂的碳足迹,本研究表明DEV2063和DEV2139是最佳稀释剂。提出了一种使用这些稀释剂的低碳足迹溶剂萃取流程,用于从废旧锂离子电池的NMC黑粉中选择性萃取钴、镍、锰、锂和铜。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d2eb/10395664/86ecfbf8ffc4/d3ra04679f-f1.jpg

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