A recycling process for recovering cobalt from lithium-ion battery cathode production scraps is investigated using green solvents. The method combines electrode delamination with triethyl phosphate (TEP), dissolution of the recovered active material in a deep eutectic solvent (DES) composed of choline chloride and oxalic acid (1:1 molar ratio), and selective cobalt precipitation via controlled pH adjustment with KOH. The recovered black mass was characterized by Powder X-ray diffraction PXRD and Thermogravimetric analysis (TGA), confirming structural integrity of LiCoO2 after TEP treatment and a purity of similar to 98.25%. Following DES leaching and precipitation at pH 12, a highly crystalline mixed cobalt oxide/hydroxide phase (CoO2/Co(OH)(2)) was obtained with a purity of 99.12%. Microwave Plasma Atomic Emission Spectroscopy (MP-AES) analysis verified effective cobalt-lithium separation, with cobalt exclusively recovered in the solid phase. A cobalt recovery efficiency of 57% was achieved at lab scale, with losses primarily attributed to material handling at low Technology Readiness Level (TRL) rather than process inefficiency. A cradle-to-gate Life Cycle Assessment (LCA) was conducted using primary experimental inventory data. Environmental hotspot analysis identified DES preparation and the leaching step as the dominant contributors across most impact categories, driven respectively by solvent production (oxalic acid and choline chloride) and electricity consumption. Sensitivity and uncertainty analyses confirmed model robustness and highlighted renewable energy transition and solvent optimization as key levers for future improvement. This early-stage LCA provides a quantitative environmental baseline to support ecodesign and scale-up of DES-based cobalt recovery from lithium cobalt oxide (LCO) cathode waste.

Mojtahedi, S., Sparascio, L., Mascetti, F., Xierzati, S., Vitale, A., D'Agostino, S., et al. (2026). Cobalt recovery from lithium cobalt oxide cathode scraps via green solvents: Process development and life cycle assessment. JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 14(5), 1-14 [10.1016/j.jece.2026.124661].

Cobalt recovery from lithium cobalt oxide cathode scraps via green solvents: Process development and life cycle assessment

Mojtahedi S.;Sparascio L.;Mascetti F.;Xierzati S.;Vitale A.;D'Agostino S.;Samori' C.;Rombolà A. G.;Greggio N.;Cespi D.
;
Passarini F.;Zentile C.;Staffolani A.;Soavi F.
2026

Abstract

A recycling process for recovering cobalt from lithium-ion battery cathode production scraps is investigated using green solvents. The method combines electrode delamination with triethyl phosphate (TEP), dissolution of the recovered active material in a deep eutectic solvent (DES) composed of choline chloride and oxalic acid (1:1 molar ratio), and selective cobalt precipitation via controlled pH adjustment with KOH. The recovered black mass was characterized by Powder X-ray diffraction PXRD and Thermogravimetric analysis (TGA), confirming structural integrity of LiCoO2 after TEP treatment and a purity of similar to 98.25%. Following DES leaching and precipitation at pH 12, a highly crystalline mixed cobalt oxide/hydroxide phase (CoO2/Co(OH)(2)) was obtained with a purity of 99.12%. Microwave Plasma Atomic Emission Spectroscopy (MP-AES) analysis verified effective cobalt-lithium separation, with cobalt exclusively recovered in the solid phase. A cobalt recovery efficiency of 57% was achieved at lab scale, with losses primarily attributed to material handling at low Technology Readiness Level (TRL) rather than process inefficiency. A cradle-to-gate Life Cycle Assessment (LCA) was conducted using primary experimental inventory data. Environmental hotspot analysis identified DES preparation and the leaching step as the dominant contributors across most impact categories, driven respectively by solvent production (oxalic acid and choline chloride) and electricity consumption. Sensitivity and uncertainty analyses confirmed model robustness and highlighted renewable energy transition and solvent optimization as key levers for future improvement. This early-stage LCA provides a quantitative environmental baseline to support ecodesign and scale-up of DES-based cobalt recovery from lithium cobalt oxide (LCO) cathode waste.
2026
Mojtahedi, S., Sparascio, L., Mascetti, F., Xierzati, S., Vitale, A., D'Agostino, S., et al. (2026). Cobalt recovery from lithium cobalt oxide cathode scraps via green solvents: Process development and life cycle assessment. JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 14(5), 1-14 [10.1016/j.jece.2026.124661].
Mojtahedi, S.; Sparascio, L.; Mascetti, F.; Xierzati, S.; Vitale, A.; D'Agostino, S.; Samori', C.; Rombolà, A. G.; Greggio, N.; Cespi, D.; Passarini, ...espandi
File in questo prodotto:
File Dimensione Formato  
1-s2.0-S2213343726036365-main.pdf

accesso aperto

Tipo: Versione (PDF) editoriale / Version Of Record
Licenza: Licenza per Accesso Aperto. Creative Commons Attribuzione - Non commerciale - Non opere derivate (CCBYNCND)
Dimensione 2.51 MB
Formato Adobe PDF
2.51 MB Adobe PDF Visualizza/Apri
1-s2.0-S2213343726036365-mmc1.docx

accesso aperto

Tipo: File Supplementare
Licenza: Licenza per Accesso Aperto. Creative Commons Attribuzione - Non commerciale - Non opere derivate (CCBYNCND)
Dimensione 446.49 kB
Formato Microsoft Word XML
446.49 kB Microsoft Word XML Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1079711
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 0
  • ???jsp.display-item.citation.isi??? 0
  • OpenAlex ND
social impact