Nd3+-doped Li3V2(PO4)3 cathode material with high rate capability for Li-ion batteries

Yue-Jiao Li Chuan-Xiong Zhou Shi Chen Feng Wua Liang Hong

Citation:  Yue-Jiao Li, Chuan-Xiong Zhou, Shi Chen, Feng Wua, Liang Hong. Nd3+-doped Li3V2(PO4)3 cathode material with high rate capability for Li-ion batteries[J]. Chinese Chemical Letters, 2015, 26(8): 1004-1007. doi: 10.1016/j.cclet.2015.03.013 shu

Nd3+-doped Li3V2(PO4)3 cathode material with high rate capability for Li-ion batteries

    通讯作者: Yue-Jiao Li,
  • 基金项目:

    This work was supported by the National Key Program for Basic Research of China (No. 2009CB220100) (No. 2009CB220100)

    National High-tech 863 Key Program (No. 2011AA11A235) (No. 2011AA11A235)

    Basic Research Fund of Beijing Institute of Technology (No. 3100012211111). (No. 3100012211111)

摘要: A series of Nd3+-doped Li3NdxV2-x(PO4)3 (x = 0.00, 0.02, 0.05, 0.08 or 0.1) composites are synthesized by the rheological phase reaction method. The XRD results indicate that Nd3+ ions have been successfully merged into a lattice structure. Doped samples show good electrochemical performance in high discharge rate and long cycle. In the potential range of 3.0-4.3 V, Li3Nd0.08V1.92(PO4)3 exhibits an initial discharge capacity of 115.8 mAh/g at 0.2 C and retain 80.86% of capacity retention at 2 C in the 51st cycle. In addition, Li3Nd0.05V1.95(PO4)3 holds at 100.4 mAh/g after 80 cycles at 0.2 C with a capacity retention of 92.4%. Finally, the CV test proves that the potential polarization of Li3Nd0.08V1.92(PO4)3 decreased compared with the un-doped one.

English

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    1. [1] K. Kesavan, C.M. Mathew, S. Rajendran, Lithium ion conduction and ion-polymer interaction in poly(vinyl pyrrolidone) based electrolytes blended with different plasticizers, Chin. Chem. Lett. 25 (2014) 1428-1434.[1] K. Kesavan, C.M. Mathew, S. Rajendran, Lithium ion conduction and ion-polymer interaction in poly(vinyl pyrrolidone) based electrolytes blended with different plasticizers, Chin. Chem. Lett. 25 (2014) 1428-1434.

    2. [2] X. Wang, Y.J. Yang, Y. Ma, J.N. Yao, Controlled synthesis of multi-shelled transition metal oxide hollow structures through one-pot solution route, Chin. Chem. Lett. 24 (2013) 1-6.[2] X. Wang, Y.J. Yang, Y. Ma, J.N. Yao, Controlled synthesis of multi-shelled transition metal oxide hollow structures through one-pot solution route, Chin. Chem. Lett. 24 (2013) 1-6.

    3. [3] C. Delacourt, L. Laffont, R. Bouchet, et al., Toward understanding of electrical limitations (electronic, ionic) in LiMPO4 (M = Fe, Mn) electrode materials, J. Electrochem. Soc. 152 (2005) A913-A921.[3] C. Delacourt, L. Laffont, R. Bouchet, et al., Toward understanding of electrical limitations (electronic, ionic) in LiMPO4 (M = Fe, Mn) electrode materials, J. Electrochem. Soc. 152 (2005) A913-A921.

    4. [4] S.F. Yang, P.Y. Zavalij, M.S. Whittingham, Hydrothermal synthesis of lithium iron phosphate cathodes, Electrochem. Commun. 3 (2001) 505-508.[4] S.F. Yang, P.Y. Zavalij, M.S. Whittingham, Hydrothermal synthesis of lithium iron phosphate cathodes, Electrochem. Commun. 3 (2001) 505-508.

    5. [5] J. Barker, M.Y. Saidi, J.L. Swoyer, Electrochemical insertion properties of the novel lithium vanadium fluorophosphate, LiVPO4F, J. Electrochem. Soc. 150 (2003) A1394-A1398.[5] J. Barker, M.Y. Saidi, J.L. Swoyer, Electrochemical insertion properties of the novel lithium vanadium fluorophosphate, LiVPO4F, J. Electrochem. Soc. 150 (2003) A1394-A1398.

    6. [6] H. Huang, S.C. Yin, T. Kerr, N. Taylor, L.F. Nazar, Nanostructured composites: a high capacity, fast rate Li3V2(PO4)3/carbon cathode for rechargeable lithium batteries, Adv. Mater. 14 (2002) 1525-1528.[6] H. Huang, S.C. Yin, T. Kerr, N. Taylor, L.F. Nazar, Nanostructured composites: a high capacity, fast rate Li3V2(PO4)3/carbon cathode for rechargeable lithium batteries, Adv. Mater. 14 (2002) 1525-1528.

    7. [7] S. Patoux, C. Wurm, M. Morcrette, G. Rousse, C. Masquelier, A comparative structural and electrochemical study of monoclinic Li3Fe2(PO4)3 and Li3V2(PO4)3, J. Power Sources 119-121 (2003) 278-284.[7] S. Patoux, C. Wurm, M. Morcrette, G. Rousse, C. Masquelier, A comparative structural and electrochemical study of monoclinic Li3Fe2(PO4)3 and Li3V2(PO4)3, J. Power Sources 119-121 (2003) 278-284.

    8. [8] Y.H. Chen, Y.M. Zhao, X.N. An, et al., Preparation and electrochemical performance studies on Cr-doped Li3V2(PO4)3 as cathode materials for lithium-ion batteries, Electrochim. Acta 54 (2009) 5844-5850.[8] Y.H. Chen, Y.M. Zhao, X.N. An, et al., Preparation and electrochemical performance studies on Cr-doped Li3V2(PO4)3 as cathode materials for lithium-ion batteries, Electrochim. Acta 54 (2009) 5844-5850.

    9. [9] S. Zhang, Q. Wu, C. Deng, et al., Synthesis and characterization of Ti-Mn and Ti-Fe codoped Li3V2(PO4)3 as cathode material for lithium ion batteries, J. Power Sources 218 (2012) 56-64.[9] S. Zhang, Q. Wu, C. Deng, et al., Synthesis and characterization of Ti-Mn and Ti-Fe codoped Li3V2(PO4)3 as cathode material for lithium ion batteries, J. Power Sources 218 (2012) 56-64.

    10. [10] C. Deng, S. Zhang, S.Y. Yang, et al., Effects of Ti and Mg codoping on the electrochemical performance of Li3V2(PO4)3 cathode material for lithium ion batteries, J. Phys. Chem. C 115 (2011) 15048-15056.[10] C. Deng, S. Zhang, S.Y. Yang, et al., Effects of Ti and Mg codoping on the electrochemical performance of Li3V2(PO4)3 cathode material for lithium ion batteries, J. Phys. Chem. C 115 (2011) 15048-15056.

    11. [11] Q.Q. Chen, X.C. Qiao, Y.B. Wang, et al., Electrochemical performance of Li3-x-NaxV2(PO4)3/C composite cathode materials for lithium ion batteries, J. Power Sources 201 (2012) 267-273.[11] Q.Q. Chen, X.C. Qiao, Y.B. Wang, et al., Electrochemical performance of Li3-x-NaxV2(PO4)3/C composite cathode materials for lithium ion batteries, J. Power Sources 201 (2012) 267-273.

    12. [12] J. Barker, R.K.B. Gover, P. Burns, A. Bryan, The effect of Al substitution on the electrochemical insertion properties of the lithium vanadium phosphate, Li3V2(PO4)3, J. Electrochem. Soc. 154 (2007) A307-A313.[12] J. Barker, R.K.B. Gover, P. Burns, A. Bryan, The effect of Al substitution on the electrochemical insertion properties of the lithium vanadium phosphate, Li3V2(PO4)3, J. Electrochem. Soc. 154 (2007) A307-A313.

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  • 发布日期:  2015-03-27
  • 收稿日期:  2015-01-16
  • 网络出版日期:  2015-02-27
通讯作者: 陈斌, bchen63@163.com
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