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Technologie odzyskiwania kobaltu oraz litu ze zużytych ogniw litowo-jonowych

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Warianty tytułu
EN
Recovery technologies of Co and Li from spent lithium-ion cells
Języki publikacji
PL
Abstrakty
PL
Celem podjętej pracy było dokonanie przeglądu aktualnego stanu techniki recyklingu i technologii dotyczących akumulatorów litowo-jonowych (LIBS). W pierwszej kolejności opisano istniejące typy baterii litowych, a następnie omówiono główne właściwości LIBS. Podsumowano wszystkie typy jednoetapowych procesów recyklingu zużytych ogniw litowo-jonowych, a także zaprezentowano kilka obiecujących procesów wieloetapowych.
EN
The aim of this work was to review the current status of recycling techniques and technologies concerning spent lithium-ion batteries (LIBs). At first existing types of lithium containing batteries were described, then the major properties of LIBs were discussed. Then all kinds of single recycling processes of the spent LIBs were summarized and some examples of typical combined processes were presented.
Rocznik
Strony
1--10
Opis fizyczny
Bibliogr. 42 poz.
Twórcy
autor
  • Instytut Transportu Samochodowego, ul. Jagiellońska 80, 03-301 Warszawa, tel.: 22-43-85-195
autor
  • Instytut Transportu Samochodowego, ul. Jagiellońska 80, 03-301 Warszawa , tel.: 22-43-85-153
Bibliografia
  • 1. S. Castillo, F. Ansart, C. Laberty-Robert, “Advances in the recovering of spent lithium battery compounds”, J. Portal, J. Power Sources 112, 247-254 (2002).Reference 2
  • 2. C. Vincent, “Lithium batteries”, IEE Rev. 45 (2), 65-68 (1999)
  • 3. C. Vincent, “Lithium batteries: a 50-year perspective, 1959-2009”, Solid State Ion. 134, 159-167 (2000)
  • 4. Y. Nishi, “Lithium ion secondary batteries: Past 10 years and the future”, J. Power Sources 100 ,101-106 (2001).
  • 5. C.K. Lee, K.I. Rhee, “Preparation of LiCO2 from spent lithium ion batteries”, J. Power Sources 109, 17-21 (2002).
  • 6. D.P. Mantuano, G. Dorella, R.C.A. Elias, M.B. Mansur, “Analysis of a hydrometallurgical route to recover base metals from spent rechargeable batteries by liquid–liquid extraction with Cyanex 272”, J. Power Sources 159, 1510-1518 (2006).
  • 7. J.P. Guptill, in: Proceeding of the Fifth International Seminar on Battery Waste Management, Vol. 5, Deerfield Beach, FL., USA, pp.1-10, Nov. 1993.
  • 8. S. Kawakami, K.K. Canon, Japan Eur. Pat. Appl. EP 613198 Al, 31, pp. 1-17, August 1994.
  • 9. M. Contestabile, S. Panero, B. Scrosati, “A laboratory-scale lithium battery recycling process”, J. Power Sources 83, 75-78 (1999).
  • 10. M. Contestabile, S. Panero, B. Scrosati, “A laboratory-scale lithium-ion battery recycling process”, J. Power Sources 92, 65-69 (2001).
  • 11. M.J. Lain, “Recycling of lithium ion cells and batteries”, J. Power Sources 97/98, 736-738 (2001).
  • 12. F. Ansart, S. Castillo, C. Laberty-Robert, M. Pellizon-Birelli, “A review of processes and technologies for the recycling of lithium-ion secondary batteries”, in: Proceedings of the Congres Gaston Plante, CNAM, Paris, pp. 1-5, October 2000.
  • 13. B. Mortgat, Environ. Tech. 183, 20-26 (1999).
  • 14. B. Mortgat, Environ. Tech. 193, 41-44 (2000).
  • 15. S.M. Shin, N.H. Kim, J.S. Sohn, D.H. Yang, Y.H. Kim, “'Development of a metal recovery process from Li-ion battery wastes”, Hydrometallurgy 79, 172-181 (2005).
  • 16. J. Nan, D. Han, X. Zuo, “Recovery of metal values from spent lithium-ion batteries with chemical deposition and solvent extraction”, J. Power Sources 152, 278–284 (2005).
  • 17. M. Bahgat, F.E. Farghaly, S.M. Abdel Basir, O.A. Fouad, “Synthesis, characterization and magnetic properties of microcrystalline lithium cobalt ferrite from spent lithium-ion batteries”, J. Mater. Process. Tech. 183, 117–121 (2007).
  • 18. C. Lupi, M. Pasquali, “Electrolytic nickel recovery from lithium-ion batteries”, Miner. Eng. 16, 537–542 (2003).
  • 19. A.M. Bernardes, D.C.R. Espinosa, J.A.S. Tenioro, “Recycling of batteries: a review of current processes and technologies”, J. Power Sources 130, 291-298 (2004).
  • 20. J. Xu, H.R. Thomas, R.B. Francis, K.R. Lum, J. Wang, B. Liang, “A review of processes and technologies for the recycling of lithium-ion secondary batteries”, J. Power Sources 177, 512-527 (2008).
  • 21. Q. Wu, W. Lu, J. Prakash, “Characterization of a commercial size cylindrical Li-ion cell with a reference electrode”, J. Power Sources 88 (2), 237-242 (2000).
  • 22. Jinqiu Xu, H.R. Thomas, Rob W. Francis, Ken R. Lum, Jingwei Wang, Bo Liang, “A review of processes and technologies for the recycling of lithium-ion secondary batteries”, Journal of Power Sources, 177, Issue 2, 512–527 (2008).
  • 23. P. Zhang, T. Yokoyama, O. Itabashi, T.M. Suzuki, K. Inoue, “Hydrometallurgical process for recovery of metal values from spent lithium-ion secondary batteries”, Hydrometallurgy 47, 259–271 (1998).
  • 24. S. Kawakami, K.K. Canon, Japan Eur. Pat. Appl. EP 613198 A1, 31 August 1994.
  • 25. J.A.S. Ten´orio, D.C. Oliveira, A.P. Chaves, “Carbon–zinc batteries treatment by ore processing methods”, in: Proceedings of the Global Symposium on Recycling Waste Treatment and Clean Technology (REWAS’99), vol. II, TMS, pp. 1153–1160 (1999).
  • 26. Y. Tanaka, Q. Zhang, F. Saito, “Synthesis of spinel Li4Mn5O12 with an aid of mechanochemical treatment”, Powder Technol. 132, 74–80 (2003).
  • 27. S. Saeki, J. Lee, Q.W. Zhang, F. Saito, “Co-grinding LiCoO2 with PVC and water leaching of metal chlorides formed in ground product”, Int. J. Miner. Process. 74S, S373–S378 (2004).
  • 28. Zhang F.Q., J. Lu, F. Saito, C. Nagata, Y. Ito, “Room temperature acid extraction of Co from LiCo0.2Ni0.8O2 scrap by a mechanochemical treatment”, Adv. Power Technol. 11, 353–359 (2000).
  • 29. D.S. Kim, J.S. Sohn, C.K. Lee, J.H. Lee, K.S. Hanc, Y.I. Lee, “Simultaneous separation and renovation of lithium cobalt oxide from the cathode of spent lithium ion rechargeable batteries”, J. Power Sources 132, 145–149 (2004).
  • 30. K.S. Han, S.W. Song, T. Watanabe, M. Yoshimura, “Single-step fabrication of Li1-xNi1+xOx and LiCoO2 films by soft solution-processing at 20-200 degrees C”, Solid State Ionics 135, 273–276 (2000).
  • 31. T.Watanabe, H. Uono, S.W. Song, K.S. Han, M. Yoshimura, “Direct Fabrication of LiCoO2 Films on Various Substrates in Flowing Aqueous Solutions at 150℃”, J. Solid State Chem. 162, 364–370 (2001).
  • 32. K.S. Han, S.W. Song, S. Tsurimoto, H. Fujita, I. Sasagawa, K.H. Choi, H.K. Kang, M. Yoshimura, “Soft Solution Processing for direct fabrication of LiMO2 (M=Ni and Co) film”, Solid State Ionics 151, 11–18 (2002).
  • 33. G. Dorella, M.B. Mansur, “A study of the separation of cobalt from spent Li-ion battery residues”, J. Power Sources 170, 210–215 (2007).
  • 34. Churl Kyoung Lee and Hun-Joon Sohn, Electrocatalytic Performance of Pb-Ru Pyrochlore Prepared by the Amorphous Citrate Precursor Method for Bifunctional Air Electrodes, METALS AND MATERIALS International, Vol. 8, No. 2 pp. 215~219 (2002).
  • 35. D. Ra, K. Han, “Used lithium ion rechargeable battery recycling using Etoile-Rebatt technology”, J. Power Sources 163, 284–288 (2006).
  • 36. D. Tong, Q. Lai, X. Ji, Chinese J. Chem. Ind. Eng. (China) 56, 1967–1970, (2005) (in Chinese).
  • 37. Li Li, Jing Gea, Feng Wua, Renjie Chena, Shi Chena, Borong Wua, “Recovery of cobalt and lithium from spent lithium ion batteries using organic citric acid as leachant”, Journal of Hazardous Materials 176, 288–293 (2010).
  • 38. D. Mishra, D.J. Kim, D.E. Ralph, J.G. Ahn, Y.H. Rhee, “Bioleaching of metals from spent lithium ion secondary batteries using Acidithiobacillus ferrooxidans”, Waste Manage. 28, 333–338 (2008).
  • 39. H. Brandl, M.A. Faramarzi, “Microbe-metal-interactions for the biotechnological treatment of metal-containing solid waste”, Particuology (China) 4, 93–97 (2006).
  • 40. D. Han, J. Nan, “Advances on the recycling and reusing of spent batteries”, Chin. J. Power Sources 29, 128–131 (2005) (in Chinese).
  • 41. J.R. Lin, C.Fan, I.L.Chang, J.Y.Shiu, Clean process of recovering metals from waste lithium-ion batteries. US Patent 65514311 (2003).
  • 42. T.Tanii, S. Tsuzuki, S.Honmura, T.Kamimura, K.Sasaki, M. Yabuki, K. Nishida, Method for crushing cell. US Patent 6524737 (2003).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-83465c81-8a7d-4e0c-8900-f546a6f2e0d9
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