Citation: Liu Wen, Yang Weijing, Guo Rui, Li Yong, Pei Haijuan, Xie Jingying. Progress in Optimization Design of High-Power Lithium/Carbon Fluorides Primary Batteries[J]. Chemistry, ;2019, 82(6): 483-487. shu

Progress in Optimization Design of High-Power Lithium/Carbon Fluorides Primary Batteries

  • Corresponding author: Xie Jingying, jyxie@mail.sim.ac.cn
  • Received Date: 6 December 2018
    Accepted Date: 21 January 2019

Figures(3)

  • Lithium/carbon fluorides (Li/CFx) battery, owing to its high energy density (2203 Wh/kg) of solid cathode systems, has attracted much attention and been applied in many fields. The optimal design of Li/CFx primary batteries with high power density was introduced in this paper. The precursors of fluorinated carbon materials, fluorination methods, surface modification of fluorinated carbon materials, electrode structure design and other factors are discussed in detail. Based on our work and recent studies by other groups, important and comprehensive guidelines for further research and development direction of lithium/carbon fluorides batteries are provided.
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    1. [1]

      H Touhara, F Okino. Carbon, 2000, 28:241~267.

    2. [2]

      G G Amatucci, N Pereira. J. Fluorine Chem., 2007, 128:243~262. 

    3. [3]

      R Hagiwara, T Nakajima, N Watanabe. J. Electrochem. Soc., 1988, 135:2128~2133. 

    4. [4]

      S S Zhang, D Foster, J Wolfenstine et al. J. Power Sources, 2009, 187:233~237. 

    5. [5]

      N D Leifer, V S Johnson, R Ben-Ari et al. J. Electrochem. Soc., 2010, 157:A148~A154. 

    6. [6]

      J H S R DeSilva, R Vazquez, P E Stallworth et al. J. Power Sources, 2011, 196:5659~5666. 

    7. [7]

      A Hamwi, H Alvergnat, S Bonnamy et al. Carbon, 1997, 35:723~728. 

    8. [8]

      E T Mickelson, C B Huffman, A G Rinzlera et al. Chem. Phys. Lett., 1988, 296:188~194.

    9. [9]

      Y Li, Y Feng, W Feng. Electrochim. Acta, 2013, 107:343~349. 

    10. [10]

      R Yazami, A Hamwi, K Guérin et al. Electrochem. Commun., 2007, 9:1850~1855. 

    11. [11]

      Y Ahmad, K Guérin, M Dubois et al. Electrochim. Acta, 2013, 114:142~151. 

    12. [12]

      P F Fulvio, S S Brown, J Adcock et al. Chem. Mater., 2011, 23:4420~4427. 

    13. [13]

      Y Matsuo, T Nakajima. Electrochim. Acta, 1996, 41:15~19. 

    14. [14]

      D Claves, A J Giraudet, A Hamwi et al. J. Phys. Chem. B, 2001, 105:1739~1742. 

    15. [15]

      A Hamwi. J. Phys. Chem. Solids, 1996, 57:677~688. 

    16. [16]

      N Liu, H Touhara, F Okino et al. J. Electrochem. Soc., 1996, 143:2267~2272. 

    17. [17]

      D Damien, P M Sudeep, T N Narayanan et al. RSC Adv., 2013, 3:25702~25706. 

    18. [18]

      H Fujimoto, A Mabuchi. Carbon, 1992, 30(2):851~857.

    19. [19]

      R Hagiwara, M Lerner, N Bartle. J. Electrochem. Soc., 1988, 135:2393~2394.

    20. [20]

      C Delabarre, K Guérin, M Dubois et al. J. Fluorine Chem., 2005, 126:1078~1087. 

    21. [21]

      A S Nazarov, V G Makotchenko. Inorg. Mater., 2002, 38(3):278~282. 

    22. [22]

      V Gupta, T Nakajima, Y Ohzawa et al. J. Fluorine Chem., 2003, 120:143~150. 

    23. [23]

      P Lam, R Yazami. J. Power Sources, 2006, 153:354~359. 

    24. [24]

      R Yazami, P Hany, P Masset et al. Mol. Cryst. Liq. Cryst., 1998, 310:397~402. 

    25. [25]

      J Giraudeta, C Delabarrea, K Guérina et al. J. Power Sources, 2006, 158:1365~1372. 

    26. [26]

      F Chamssedine, M Dubois, K Guérin et al. Chem. Mater., 2007, 19:161~172. 

    27. [27]

      S S Zhang, D Foster, J Read. J. Power Sources, 2009, 188:601~605. 

    28. [28]

      S S Zhang, D Foster, J Read. J. Power Sources, 2009, 191:648~652. 

    29. [29]

      L Zhu, Y Pan, L Li et al. J. Electrochem. Sci., 2016, 11:14~22.

    30. [30]

      Y Dai, S Cai, L Wu et al. J. Mater. Chem. A, 2014, 2:20896~20901. 

    31. [31]

      Y Dai, Y Fang, S Cai et al. J. Electrochem. Soc., 2017, 164(2):A1~A7.

    32. [32]

      Y Li, Y Chen, W Feng et al. J. Power Sources, 2011, 196:2246~2250. 

    33. [33]

      P Meduri, H Chen, X Chen et al. Electrochem. Commun., 2011, 13:1344~1348.

    34. [34]

      H Groult, C M Julien, A Bahloul et al. Electrochem. Commun., 2011, 13:1074~1076. 

    35. [35]

      W Yang, Y Dai, S Cai et al. J. Power Sources, 2014, 255:37~42. 

    36. [36]

      M A Reddy, B Breitung, M Fichtner. ACS Appl. Mater. Interf., 2013, 5:11207~11211. 

    37. [37]

      Y Li, W Feng. J. Power Sources, 2015, 274:1292~1299. 

    38. [38]

      P H Smith, R B Sepe Jr, K G Waterman et al. J. Power Sources, 2016, 327:495~506. 

    39. [39]

      N G Nair, M Blanco, W West et al. J. Phys. Chem. A, 2009, 113:5918~5926. 

    40. [40]

      L F Li, H S Lee, H Li et al. Electrochem. Commun., 2009, 11:2296~2299. 

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