[1] Reddy T B, Handbook of Batteries(fourth Ed.)[M]. McGraw-Hill, 2011:284-285.
[2] Zhang S S, Foster D, Wolfenstine J, et al. Electrochemical characteristic and discharge mechanism of a primary Li/CFx cell[J]. Journal of Power Sources, 2009, 187: 233-237.
[3] Nagata M, Yi J, Tomicsi M. Performance of lithium primary cell using a hybrid positive electrode of LiV3O8 and CFx[C]//Battery/energy technology (general)-218th ECS Meeting,
10-15 October 2010, Las Vegas, Nevada, USA, ECS Transactions, 2011, 33(39): 223-237.
[4] Sideris P J, Yew R, Nieves I, et al. Charge transfer in Li/CFx–silver vanadium oxide hybrid cathode batteries revealed by solid state 7Li and 19F nuclear magnetic resonance spectroscopy[J]. Journal of Power Sources, 2014, 254: 293-297.
[5] Chen D(陈笛), Wang X H(王兴贺), Meng X L(孟宪玲), et al. Process for preparing cathode MnO2 with additive CFx[J]. Chinese Journal of Power Sources(电源技术), 2013, 37(6): 973-975.
[6]Yang K(杨凯), Liu X S(刘雪省), Zhang J(张晶), et al. Investigation of a primary Li cell whose cathode was made of the mixture of fluorinated carbon and electrolytic manganese dioxide[J]. Journal of Functional Materials(功能材料), 2014, 45(22): 22075-22078.
[7] Yazami R, Hamwi A, Guérin K, et al. Fluorinated carbon nanofibres for high energy and high power densities primary lithium batteries[J]. Electrochemistry Communications, 2007, 9(7): 1850-1855.
[8] Li Y, Feng Y, Feng W. Deeply fluorinated multi-wall carbon nanotubes for high energy and power densities lithium/carbon fluorides battery[J]. Electrochimica Acta, 2013, 107: 343-349.
[9] Sun C, Feng Y, Li Y, et al. Solvothermally exfoliated fluorographene for high-performance lithium primary batteries[J]. Nanoscale, 2014, 6(5): 2634-2641.
[10] Xu Y(许耀), Lu L(詹亮), Wang Y(王赟), et al. Fluorinated grapheme as a cathode material for high performance primary lithium ion batteries [J]. New Carbon Materials(新型碳材料), 2015, 30(1): 79-85.
[11] Zhang S S, Foster D, Read J. Enhancement of discharge performance of Li/CFx cell by thermal treatment of CFx cathode material[J]. Journal of Power Sources, 2009, 188:601-605.
[12] Zhang S S, Foster D, Read J. Carbothermal treatment for the improved discharge performance of primary Li/CFx battery[J]. Journal of Power Sources, 2009, 191: 648-652.
[13] Zhu L, Pan Y, Li L, et al. Preparation of CFx@C Microcapsules as a high-rate capability cathode oflithium primary battery. Journal of the Electrochemical Society.2016, 11:14-22.
[14] Dong Q F(董全峰), Zheng M S(郑明森), Huang Z C(黄镇财), et al. The synthesis, characteristics and performance of CNT composites as anodic materials in litiumion battery(电化学), 2005, 11(2): 152-156.
[15] Li Y, Chen Y, Feng W, et al. The improved discharge performance of Li/CFx batteries by using multi-walled carbon nanotubes as conductive additive[J]. Journal of Power Sources, 2011, 196(4): 2246-2250.
[16] Hightower A, Darolles I, Yazami R. Surface species on Ag modified carbon fluoride (CFx) rechargeable battery electrodes measured by XPS[C]//The 15th International Meeting on Lithium Batteries-IMLB, 2010 June 28, Montreal, Canada, 2010: 518.
[17] Wu C L, Wang H B, Liao C B, et al. Enhanced performance of Li-O2 battery based on CFx/C composites as cathode materials[J]. Electrochimica Acta, 2015, 186:631-641.
[18] Okotrub A V, Babin K S, Guselnikov A V, et al. Interaction of NH3 with the reduced surface of graphite fluoride C2F[J]. Phys. Status Solidi B, 2010, 247, 2010, 247(11/12): 3039-3042..
[19] Ma Y C. Preparation of fluorinated fluorine and the preparation of fluorinated fluorine by chemical reduction[D]. NanJing, Nanjing University of Science and Technology(南京理工大学), 2012.
[20] Touhara H, Okino F. Property control of carbon materials by fluorination[J]. Carbon, 2000, 38(2): 241-267.
[21] Fulvio P F, Brown S S, Adcock J, et al. Low-temperature fluorination of soft-templated mesoporous carbons for a high-power lithium/carbon fluoride battery[J]. Chemistry of Materials, 2011, 23(20): 4420-4427.
[22] Groult H, Durand-Vidal S, Devilliers D, et al. Kinetics of fluorine evolution reaction on carbon anodes: influence of the surface C-F films [J]. Journal of Fluorine Chemistry, 2001, 107(2): 247-254.
[23] Li G Y, Li Y H, Zhang H, et al. Time-dependent density functional theory study on a fluorescent chemosensor based on C−H···F hydrogen-bond interaction[J]. Communications in Computational Chemistry, 2013, 1(1): 88-98. |