[1] ARMAND M,TARASCON J M. Building better batteries[J]. Nature,2008,45:652-657. [2] GOODENOUGH J B,KIM Y. Challenges for rechargeable Li batteries[J]. Chem. Mater.,2010,22:587-603. [3] TARASCON J M,ARMAND M. Issues and challenges facing rechargeable lithium batteries[J]. Nature,2001,414:359-367. [4] OHSAKI T,KISHI T,KUBOKI T,et al. Overcharge reaction of lithium-ion batteries[J]. Journal of Power Sources,2005,146:97-100. [5] YANG J P,ZHANG Y F,ZHAO P,et al. In-situ coating of cathode by electrolyte additive for high-voltage performance of lithium-ion batteries[J]. Electrochimica Acta,2015,158:202-208. [6] ZHANG S S. A review on electrolyte additives for lithium-ion batteries[J]. Journal of Power Sources,2006,162:1379-1394. [7] LEE K T,JEONG S,CHO J. Roles of surface chemistry on safety and electrochemistry in lithium ion batteries[J]. Accounts of Chemical Research,2013,46(5):1161-1170. [8] YANG H X,CAO Y L,AI X P,et al. Improved discharge capacity and suppressed surface passivation of zinc anode in dilute alkaline solution using surfactant additives[J]. Journal of Power Sources,2004,128:97-101. [9] FENG X M,AI X P,YANG H X. A positive-temperature-coefficient electrode with thermal cut-off mechanism for use in rechargeable lithium batteries[J]. Electrochemistry Communications,2004,6 :1021-1024. [10] 夏兰,李素丽,艾新平,等. 锂离子电池的安全性技术[J]. 化学进展,2011,23:328-335. XIA Lan,LI Suli,AI Xinping,et al. Safety enhancing methods for Li-ion batteries[J]. Progress in Chemistry,2011,23:328-335. [11] YANG J P,ZHAO P,SHANG Y M,et al. Improvement in high-voltage performance of lithium-ion batteries using bismaleimide as an electrolyte additive[J]. Electrochimica Acta,2014,121:264-269. [12] 欧育湘,李建军. 阻燃剂:性能,制造及应用[M]. 北京:化学工业出版社,2006:162-233. OU Yuxiang,LI Jianjun. Flame retardants:Properties, manufacture and application[M]. Beijing:Chemical Industry Press,2006:162-233. [13] ALLCOCK H R. Polyphosphazene elastomers, gels, and other soft materials[J]. Soft Matter.,2012,8:7521-7532. [14] GRUEBAUM M,HILLER M M,JANKOWSKY S,et al. Synthesis and electrochemistry of polymer based electrolytes for lithium batteries[J]. Progress in Solid State Chemistry,2014,42:85-105. [15] SHAW R A,FITZSIMMONS B W,SMITH B C. The phosphazenes (phosphonitrilic compounds) [J]. Chemical Reviews,1962(3):247-281. [16] 张亨. 六氯环三磷腈的合成研究进展[J]. 中国氯碱,2011(9):21-24. ZHANG Heng. Research development of the synthesis of hexachlorotriphosphazene[J]. China Chlor-Alkali,2011(9):21-24. [17] GLERIA M,JAEGER R D. Aspects of phosphazene research[J]. Journal of Inorganic and Organometallic Polymers,2001,11(1):1-45. [18] LEE C W,VENKATACHALAPATHY R,PRAKASH J. A novel flame-retardant additive for lithium batteries[J]. Electrochemical and Solid-State Letters,2000,3(2):63-65. [19] AHN S,KIM H S,YANG S,et al. Thermal stability and performance studies of LiCo 1/3 Ni 1/3 Mn 1/3 O 2 with phosphazene additives for Li-ion batteries[J]. J. Electroceram.,2009,23:289-294. [20] XIA L,XIA Y G,LIU Z P. A novel fluorocyclophosphazene as bifunctional additive for safer lithium-ion batteries[J]. Journal of Power Sources,2015,278:190-196. [21] FEI S T,ALLCOCK H R. Methoxyethoxyethoxyphosphazenes as ionic conductive fire retardant additives for lithium battery systems[J]. Journal of Power Sources,2010,195:2082-2088. [22] SAZHIN S V,HARRUP M K,GERING K L. Characterization of low-flammability electrolytes for lithium-ion batteries[J]. Journal of Power Sources,2011,196:3433-3438. [23] HARRUP M K,ROLLINS H W,JAMISON D K,et al. Unsaturated phosphazenes as co-solvents for lithium-ion battery electrolytes[J]. Journal of Power Sources,2015,278:794-801. [24] ROLLINS H W,HARRUP M K,DUFEK E J,et al. Fluorinated phosphazene co-solvents for improved thermal and safety performance in lithium-ion battery electrolytes[J]. Journal of Power Sources,2014,263:66-74. [25] SAZHIN S V,GERING K L,HARRUP M K,et al. Highly quantitative electrochemical characterization of non-aqueous electrolytes and solid electrolyte interphases[J]. Journal of the Electrochemical Society,2014,161(3):A393-A402. [26] TSUJIKAWA T,YABUT A,MATSUSHITA T,et al. Characteristics of lithium-ion battery with non-flammable electrolyte[J]. Journal of Power Sources,2009,189:429-434. [27] TSUJIKAWA T,YABUTA K,ARAKAWA M,et al. Safety of large-capacity lithium-ion battery and evaluation of battery system for telecommunications[J]. Journal of Power Sources,2013,244:11-16. [28] XU G X,LU Q,YU B T,et al. Inorganic polymer phosphazene disulfide as cathode material for rechargeable lithium batteries[J]. Solid State Ionics,2006,177:305-309. [29] DUFEK E J,STONE M L,JAMISON D K,et al. Hybrid phosphazene anodes for energy storage applications[J]. Journal of Power Sources,2014,267:347-355. [30] CHOIA J A,KANG Y,KIM D W. Lithium polymer cell assembled by in situ chemical cross-linking of ionic liquid electrolyte with phosphazene-based cross-linking agent[J]. Electrochimica Acta,2013,89:359-364. |