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Recovery of Li, Ni, Co and Mn from spent lithium-ion batteries assisted by organic acids: Process optimization and leaching mechanism

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摘要 The proper recycling of spent lithium-ion batteries(LIBs)can promote the recovery and utilization of valuable resources,while also negative environmental effects resulting from the presence of toxic and hazardous substances.In this study,a new environmentally friendly hydro-metallurgical process was proposed for leaching lithium(Li),nickel(Ni),cobalt(Co),and manganese(Mn)from spent LIBs using sulfuric acid with citric acid as a reductant.The effects of the concentration of sulfuric acid,the leaching temperature,the leaching time,the solid-liquid ratio,and the reducing agent dosage on the leaching behavior of the above elements were investigated.Key parameters were optimized using response surface methodology(RSM)to maximize the recovery of metals from spent LIBs.The maxim-um recovery efficiencies of Li,Ni,Co,and Mn can reach 99.08%,98.76%,98.33%,and 97.63%.under the optimized conditions(the sulfuric acid concentration was 1.16 mol/L,the citric acid dosage was 15wt%,the solid-liquid ratio was 40 g/L,and the temperature was 83℃ for 120 min),respectively.It was found that in the collaborative leaching process of sulfuric acid and citric acid,the citric acid initially provided strong reducing CO_(2)^(-),and the transition metal ions in the high state underwent a reduction reaction to produce transition metal ions in the low state.Additionally,citric acid can also act as a proton donor and chelate with lower-priced transition metal ions,thus speeding up the dissolution process.
出处 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2024年第3期518-530,共13页 矿物冶金与材料学报(英文版)
基金 supported by Key R&D Program of Zhejiang Province,China (No.2022C03061) the National Natural Science Foundation of China (No.52074204) the Fundamental Research Funds for the Central Universities (No.2023-vb-032).
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  • 1吕小三,雷立旭,余小文,韩杰.一种废旧锂离子电池成分分离的方法[J].电池,2007,37(1):79-80. 被引量:27
  • 2Knowlen C,Matick AT,Bruckner AP.High efficiency energy conversion systems for liquid nitrogen automobiles.SAE paper 1998;No 981898.
  • 3ECOSTAR:European concentrated solar thermal road-mapping,Deliverable No.7,Roadmap Document,Nov.2004,Available online:http://www.vgb.org/data.o/vgborg_/Forschung/road-map252.pdf[2007-03-20]. Receiveddate:04/15/2008 Modifieddate:07/02/2008 Published:03/10/2009
  • 4Mclarnon FR,Cairns EJ.Energy storage.Ann Rev Energy 1989;14:241-71.
  • 5Baker JN,Collinson A.Electrical energy storage at the turn of the millennium.Power Eng J 1999;6:107-12.
  • 6Dti Report.Status of electrical energy storage systems.DG/DTI/00050/00/00,URN NUMBER 04/1878,UK Department of Trade and Industry;2004,p.1-24.
  • 7Australian Greenhouse Office.Advanced electricity storage technol-ogies programme.ISBN:1 921120 37 1,Australian Greenhouse Office;2005,p.1-35.
  • 8Walawalkar R,Apt J,Mancini R.Economics of electric energy storage for energy arbitrage and regulation.Energy Policy 2007;5:2558-68.
  • 9Dti Report.Review of electrical energy storage technologies and systems and of their potential for the UK.DG/DTI/00055/00/00,URN NUMBER 04/1876,UK Department of Trade and Industry;2004,p.1-34.
  • 10Dobie WC.Electrical energy storage.Power Eng J 1998;12:177-81.

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