Hydrometallurgical Process to Recover Cobalt from Spent Li-Ion Batteries
The growth of the lithium-ion battery industry requires a secure supply of raw materials and appropriate end-of-life management of batteries. In almost five years, global cobalt consumption has increased by nearly 30%, driven mainly by rechargeable batteries. Consequently, several risks have been id...
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doaj-bc83115fc3614c1aa4542e14cccc11b02021-06-30T23:30:48ZengMDPI AGResources2079-92762021-06-0110585810.3390/resources10060058Hydrometallurgical Process to Recover Cobalt from Spent Li-Ion BatteriesNeila Djoudi0Marie Le Page Mostefa1Hervé Muhr2Laboratoire Réactions et Génie des Procédés (LRGP) UMR 7274 CNRS, Université de Lorraine, 1 rue Grandville BP20451, 54001 Nancy, FranceLaboratoire Réactions et Génie des Procédés (LRGP) UMR 7274 CNRS, Université de Lorraine, 1 rue Grandville BP20451, 54001 Nancy, FranceLaboratoire Réactions et Génie des Procédés (LRGP) UMR 7274 CNRS, Université de Lorraine, 1 rue Grandville BP20451, 54001 Nancy, FranceThe growth of the lithium-ion battery industry requires a secure supply of raw materials and appropriate end-of-life management of batteries. In almost five years, global cobalt consumption has increased by nearly 30%, driven mainly by rechargeable batteries. Consequently, several risks have been identified for cobalt, in particular the growing demand for electric vehicles, which could exceed current production. Therefore, research into the recovery of this critical metal, from industrial or urban waste, is particularly important in the years to come. In this study, cobalt is recovered from a lithium-ion battery leachate in hydroxide form. The thermodynamic simulations performed with Visual Minteq showed that it was possible to recover 99.8% of cobalt (II) hydroxide at 25 °C. Based on these results, experiments were conducted to validate the hypotheses put forward and to compare the results obtained with the simulations performed. Experimentally, several operating parameters were studied to determine the optimal conditions for cobalt recovery, in terms of yield, filterability, and selectivity. Results obtained in a batch reactor allowed the determination of the temperature conditions to be applied in continuous reactor. The cobalt (II) hydroxide precipitation in continuous reactor was carried out under different pH conditions. It was then possible to determine the optimal conditions for cobalt recovery in terms of yield and filterability. Results showed that working at pH 9 would effectively meet the desired criteria. Indeed, cobalt recovery is close to 100% and filtration flow rate is three times higher. Results obtained allow a better understanding of cobalt (II) hydroxide precipitation.https://www.mdpi.com/2079-9276/10/6/58cobalthydrometallurgyprecipitationprocessli-ion battery recycling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Neila Djoudi Marie Le Page Mostefa Hervé Muhr |
spellingShingle |
Neila Djoudi Marie Le Page Mostefa Hervé Muhr Hydrometallurgical Process to Recover Cobalt from Spent Li-Ion Batteries Resources cobalt hydrometallurgy precipitation process li-ion battery recycling |
author_facet |
Neila Djoudi Marie Le Page Mostefa Hervé Muhr |
author_sort |
Neila Djoudi |
title |
Hydrometallurgical Process to Recover Cobalt from Spent Li-Ion Batteries |
title_short |
Hydrometallurgical Process to Recover Cobalt from Spent Li-Ion Batteries |
title_full |
Hydrometallurgical Process to Recover Cobalt from Spent Li-Ion Batteries |
title_fullStr |
Hydrometallurgical Process to Recover Cobalt from Spent Li-Ion Batteries |
title_full_unstemmed |
Hydrometallurgical Process to Recover Cobalt from Spent Li-Ion Batteries |
title_sort |
hydrometallurgical process to recover cobalt from spent li-ion batteries |
publisher |
MDPI AG |
series |
Resources |
issn |
2079-9276 |
publishDate |
2021-06-01 |
description |
The growth of the lithium-ion battery industry requires a secure supply of raw materials and appropriate end-of-life management of batteries. In almost five years, global cobalt consumption has increased by nearly 30%, driven mainly by rechargeable batteries. Consequently, several risks have been identified for cobalt, in particular the growing demand for electric vehicles, which could exceed current production. Therefore, research into the recovery of this critical metal, from industrial or urban waste, is particularly important in the years to come. In this study, cobalt is recovered from a lithium-ion battery leachate in hydroxide form. The thermodynamic simulations performed with Visual Minteq showed that it was possible to recover 99.8% of cobalt (II) hydroxide at 25 °C. Based on these results, experiments were conducted to validate the hypotheses put forward and to compare the results obtained with the simulations performed. Experimentally, several operating parameters were studied to determine the optimal conditions for cobalt recovery, in terms of yield, filterability, and selectivity. Results obtained in a batch reactor allowed the determination of the temperature conditions to be applied in continuous reactor. The cobalt (II) hydroxide precipitation in continuous reactor was carried out under different pH conditions. It was then possible to determine the optimal conditions for cobalt recovery in terms of yield and filterability. Results showed that working at pH 9 would effectively meet the desired criteria. Indeed, cobalt recovery is close to 100% and filtration flow rate is three times higher. Results obtained allow a better understanding of cobalt (II) hydroxide precipitation. |
topic |
cobalt hydrometallurgy precipitation process li-ion battery recycling |
url |
https://www.mdpi.com/2079-9276/10/6/58 |
work_keys_str_mv |
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