Progress of Recycling and Seperation of the Electrode Materials from Spent Lithium-Ion Batteries

Article Preview

Abstract:

With the development of economy and electronic technology, Lithium-ion Batteries(LIBs)have become new flourishing energy-materials. With the wide utilization and consumption of them, there are large amounts of spent lithium-ion batteries produced. The LIBs contain many valued metals, and the recovery and utilization of them can not only reduce environmental pollution, but also slow the lack of resource effectively, increase social and economic benefit. These methods for recovery and separation of LIBs are introduced, and the existing problems and prospect of the recycling recovery technologies are put forward.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 550-553)

Pages:

2319-2324

Citation:

Online since:

July 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Y. P. Wu, H.P. Zhang, F. Wu, etc. Polymer lithium-ion batteries [M]. Beijing: Chemical Industry Press( 2007):1-16.(In Chinese)

Google Scholar

[2] C. Lupi, M. Pasqual, A. Dell'Era..Waste Management, 2005,25:215-220.

Google Scholar

[3] J.H. Li. Waste battery management and recycling [M]. Beijing: Chemical Industry Press (2005) 125-128. (In Chinese)

Google Scholar

[4] O. A. Fouad, F. I. Farghaly, M. Bahgat. J. Anal. Appl. Pyrolysis, 2007, 78:65.

Google Scholar

[5] Kanemura St..Inorganic Materail,1999(5):165-175.

Google Scholar

[6] S. Saeki, J. Lee, Q. W. Zhang, et al. International Journal of Mineral Processing, 2004,74(1): 373-378.

Google Scholar

[7] H.B. He, Y.H. Qin. Power Technology, 2006, 30 (5):380-382. (In Chinese)

Google Scholar

[8] M. S. Shun, H. K. Nak, S. S. Jeong. et a1. Hydrometal1urgy,2005,79(1):172-181.

Google Scholar

[9] D. P. Mantuano, G. Dorella, R. C. A. Elias, et al. J Power Sources, 2006, 159: 1510–1518.

Google Scholar

[10] C. K. Lee, K. I. Rhee. J Power Sources, 2002, 109:17–21.

Google Scholar

[11] C. K. Lee, K. I. Rhee. Wastes Hydrometallurgy, 2003, 68:5–10.

Google Scholar

[12] Y.F. Shen. Nonferrous Metals, 2002, 54 (4):69-70. (In Chinese)

Google Scholar

[13] J.J. Wen, J.Li. Environmental Protection, 2001, 12:39-40. (In Chinese)

Google Scholar

[14] J. Nan, D. M. Han, X. X. Zuo. J Power Sources, 2005, 152:278-284.

Google Scholar

[15] A. L. Salgado, A. M. O. Veloso, et al. J Power Sources,2003, 115: 367–373.

Google Scholar

[16] D. P. Mantuano, G. Dorella, R. C. A. Elias. J Power Sources, 2006, 159(2): 1510-1518.

Google Scholar

[17] P. W. Zhang, T. Yokoyama, O. Itabashi,et al. Hydrometallurgy,1998,47(2-3):259-271.

Google Scholar

[18] J.M. Nan, E.M. Chen, M.Cui, et al. Battery, 2004, 34 (4):309-311. (In Chinese)

Google Scholar

[19] R. S. Juang, Y. C. Wang. Water Research, 2003, 37(4): 845-852.

Google Scholar

[20] H.X. Tan, Q.Y. Hu, X.H.Li, et al. Metals and carbide, 2006, 34 (1):33-35. (In Chinese)

Google Scholar

[21] S. Castillo, F. Ansart, C. Laberty-Robert, et al. Journal of power sources, 2002, 112(1):247-254.

Google Scholar

[22] M. Contestabile,S. Panero, B. Scrostai. J Power Sources, 2001, 92(1-2):65-69.

Google Scholar

[23] L.P. Guo, Z.L. Huang, W. Fang. Battery, 2005, 35 (4):266-267. (In Chinese)

Google Scholar

[24] M. B. J. G. Freitas, E. M. Garcia. J Power Sources, 2007, 171(2): 953-959.

Google Scholar

[25] D. Mishra, D. J. Kim, D. E. Ralph, et al. Waste Management, 2008, 28(2): 333-338.

Google Scholar

[26] B. P. Xin, D. Zhang, X. Zhang, et al. Bioresource Technology, 2009, 100(24): 6163-6169.

Google Scholar