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化学进展 2009, Vol. 21 Issue (10): 2017-2027 前一篇   后一篇

所属专题: 锂离子电池

• 综述与评论 •

锂离子电池界面膜形成功能分子的研究现状*

许梦清1,2,3;邢丽丹1;李伟善1,2,3**   

  1. (1.华南师范大学化学与环境学院 广州 510006;2. 广东省高等学校电化学储能与发电技术重点实验室 广州 510006;3.华南理工大学材料科学与工程学院 广州 510641 )
  • 收稿日期:2008-10-27 修回日期:2008-12-04 出版日期:2009-10-24 发布日期:2009-10-09
  • 通讯作者: 李伟善 E-mail:liwsh@scnu.edu.cn
  • 基金资助:

    国家自然科学基金

Additives of Interphase Film Formation for Lithium Ion Batteries

Xu Mengqing1,2,3;  Xing Lidan1;   Li Weishan1,2,3   

  1. (1. School of Chemistry and Environment, South China Normal University, Guangzhou, 510006, China; 2. Key Lab of Electrochemical Technology on Energy Storage and Power Generation in Guangdong Universities, Guangzhou 510006, China; 3. College of Materials Science and Engineering, South China University of Technology, Guangzhou, 510641, China)
  • Received:2008-10-27 Revised:2008-12-04 Online:2009-10-24 Published:2009-10-09
  • Contact: Li Weishan E-mail:liwsh@scnu.edu.cn
  • Supported by:

    National Natural Science Foundation of China

本文综述了锂离子电池正、负极嵌锂材料/电解质界面膜形成功能分子的研究现状。在总结负极界面膜形成机理的基础上,根据成膜功能分子形成SEI膜的不同机理,从饰膜机制和成膜机制两个方面对现有成膜功能分子的作用效果进行了综述与评价,提出了现有SEI膜形成功能分子的不足及所面临的问题。此外,简单阐述了正极界面膜的形成机制以及正极界面膜形成功能分子的研究进展。文章最后简单综述了理论计算方法在锂离子电池界面膜研究中的应用,并对其在设计新型成膜功能分子的应用前景进行了展望。

The progress on additives of interphase films formed on anode/electrolyte and cathode/electrolyte interphases for lithium ion batteries is reviewed in this paper. On the basis of summarization of the mechanism of SEI film formation on anode surface, the performance of additives is reviewed and evaluated from two different SEI formation mechanisms, modification film mechanism and formation film mechanism, respectively. The drawback and challenge of SEI film formation additives are also illustrated. In addition, the mechanism and the progress of additives on cathode/electrolyte interphase are basically introduced. At the end of the paper, the application of theoretical calculation methods on interphase film is basically reviewed, and the application of theoretical calculation methods on the designation and optimization of new additives is also prospected.

Contents
1 Introduction
2 Progress of formation process and characterization of interphase films
2.1 SEI of anode/electrolyte
2.2 Additives of interphase film formation on cathode/electrolyte
3 The application of theoretical calculation method on interphase film
3.1 The application of theoretical calculation method on the mechanism of interphase film formation
3.2 The application of theoretical calculation method on the mechanism and designation of additives of interphase film formation
4 Conclusion and prospect

中图分类号: 

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[ 1 ]  Xu K, Lam Y, Zhang S S , et al . J . Phys. Chem. C , 2007 , 111 :7411 —7421
[ 2 ]  Lu D S , Li W S , Zuo X X, et al . J . Phys. Chem. C , 2007 , 111 :12067 —12074
[ 3 ]  Camplion C L , Li W T, Lucht B L. J . Electrochem. Soc. , 2005 ,152 : A2327 —A2334
[ 4 ]  徐仲榆(Xu Z Y) , 郑洪河(Zheng H H) . 电源技术(Chinese J .Power Sources) , 2000 , 24 (3) : 171 —177
[ 5 ]  倪江锋(Ni J F) , 周恒辉(Zhou H H) , 陈继涛(Chen J T) 等.化学进展(Progress in Chemsitry) , 2004 , 16 (3) : 335 —342
[ 6 ]  Arakawa M, Yamaki J I. J . Electroanal . Chem. , 1987 , 219 :273 —280
[ 7 ]  Peled E. J . Electrochem. Soc. , 1979 , 126 : 2047 —2051
[ 8 ]  Peled E , Golodnistsky D , Menachem C , et al . J . Electrochem.Soc. , 1998 , 145 : 3482 —3486
[ 9 ]  Besenhard J O , Winter M, Yang J , et al . J . Power Sources , 1995 ,54 : 228 —231
[10 ]  Chung G, Kim H , Yu S , et al . J . Electrochem. Soc. , 2000 , 147 :4391 —4398
[11 ]  Zhang S S , Xu K, Jow T R. Electrochim. Acta , 2006 , 51 : 1636 —1640
[12 ]  Xu K, Zhang S S , Jow T R. Electrochem. Solid-State Lett . , 2003 ,6 : A117 —A120
[13 ]  郑洪河(Zheng H H) . 锂离子电池电解质(Lithium-Ion Battery Electrolyte) . 北京: 化学工业出版社(Chemical Industry Press) ,2007. 116 - 118
[14 ]  Ein2Eli Y, Thomas S R , Koch V R , et al . J . Electrochem. Soc. ,1997 , 144 : 1159 —1165
[15 ]  Besenhard J O , Wagner M W, Winter M, et al . J . Power Sources ,1993 , 44 : 413 —420
[16 ]  Ein-Eli Y, Markovsky B , Aurbach D , et al . Electrochim. Acta ,1994 , 39 : 2559 —2569
[17 ]  Zhuang G V , Yang H , Blizanac B , et al . Electrochem. Solid-State Lett . , 2005 , 8 : A441 —A445
[18 ]  Levi M D , Markevich E , Wang C , et al . J . Electrochem. Soc. ,2004 , 151 : A8482A856
[19 ]  左晓希(Zuo X X) , 刘建生(Liu J S) , 李伟善(Li W S) 等. 电池(Battery Bimonthly) , 2002 , 32 (6) : 358 —360
[20 ]  Mao H , Reimers J N. US 5964902 , 1999
[21 ]  Mao H , Sacken U V , Reimers J N. US 5891592 , 1999
[22 ]  Xu K, Zhang S S , Jow T R , et al . Electrochem. Solid-State Lett . ,2002 , 5 : A26 —A29
[23 ]  Xu K, Zhang S S , Lee U , et al . J . Power Sources , 2005 , 146 :79 —85
[24 ]  Chen Z, Lu W Q , Liu J , et al . Electrochim. Acta , 2006 , 51 :3322 —3326
[25 ]  Xu K, Zhang S S , Poese B A , et al . Elecrochem. Solid-State Lett . ,2002 , 5 : A259 —A262
[26 ]  Xu K, Lee U , Zhang S S , et al . Electrochem. Solid-State Lett . ,2003 , 6 : A144 —A148
[27 ]  Zhang S S. Electrochem. Commun. , 2006 , 8 : 1423 —1428
[28 ]  Jow T R , Zhang S S , Xu K. US 7172834 , 2007
[29 ]  Xiao A , Yang L , Lucht B L. Electrochem. Solid-State Lett . , 2007 ,10 : A241 —A244
[30 ]  Aurbach D , Gamolsky K, Markovsky B , et al . Electrochim. Acta ,2002 , 47 : 1423 —1439
[31 ]  Contestabile M, Morselli M, Paraventi R , et al . J . Power Sources ,2003 , 119P121 : 943 —947
[32 ]  Aurbach D , Gnanaraj J S , Geissler W, et al . J . Electrochem.Soc. , 2004 , 151 : A23 —A30
[33 ]  Sasaki T, Abe T, Iriyama Y, et al . J . Electrochem. Soc. , 2005 ,152 : A2046 —A2050
[34 ]  Chen G, Zhuang G V , Richardson T J , et al . Electrochem. Solid-State Lett . , 2005 , 8 : A344 —A347
[35 ]  Hu Y S , Kong W H , Wang Z X, et al . Electrochem. Solid-State Lett . , 2004 , 7 : A442 —A446
[36 ]  Lee J T, Lin YW, Jan Y S , et al . J . Power Sources , 2004 , 132 :244 —248
[37 ]  Abe K, Yoshitake H , Kitakura T, et al . Electrochim. Acta , 2004 ,49 : 4613 —4622
[38 ]  Komaba S , Itabashi T, Ohtsuka T, et al . J . Electrochem. Soc. ,2005 , 152 : A937 —A946
[39 ]  Ufheil J , Baertsh M C , Wursig A , et al . Electrochim. Acta , 2005 ,50 : 1733 —1738
[40 ]  Matsuoka O , Hiwara A , Omi T, et al . J . Power Sources , 2002 ,108 : 128 —138
[41 ]  Besenhard J O , Wagner M W, Winter M, et al . J . Electrochem.Soc. , 1999 , 146 : 470 —472
[42 ]  Gan H , Takeuchi E S. US 6136477 , 2000
[43 ]  Gan H , Takeuchi E S. US 6027827 , 2000
[44 ]  Santner HJ , Moller K C , Ivanco J . J . Power Sources , 2003 , 119/121 : 368 —372
[45 ]  Jow T R , Zhang S S , Xu K, et al . US 6905762 , 2005
[46 ]  Shu Z X, McMillan R S , Murray J J . J . Electrochem. Soc. , 1996 ,43 : 2230 —2235
[47 ]  Martin W, Petr N. J . Electrochem. Soc. , 1998 , 145 : L27 —L30
[48 ]  Naji A , Ghanbaja J , Willmann P , et al . Electrochim. Acta , 2000 ,45 : 1893 —1899
[49 ]  McMillan R , Slegr H , Shu Z X, et al . J . Power Sources , 1999 , 81/82 : 20 —26
[50 ]  Hu Y, Kong W, Wang Z, et al . Solid State Ionics , 2005 , 176 :53 —56
[51 ]  Ein-Eli Y, Thomas S R , Koch V R. J . Electrochem. Soc. , 1997 ,144 : 1159 —1165
[52 ]  Ein-Eli Y. J . Electroanal . Chem. , 2002 , 531 : 95 —99
[53 ]  Wrodnigg G H , Wrodnigg TM, Besenhard J O , et al . Electrochem.Commun. , 1999 , 1 : 148 —150
[54 ]  Mogi R , Inaba M, Jeong S K, et al . J Electrochem. Soc. , 2002 ,149 : A1578 —A1583
[55 ]  Xu K, Angell C A. J . Electrochem. Soc. , 2002 , 149 : A920 —A926
[56 ]  Ein2Eli Y, McDevitt S F , Aurbach D , et al . J . Electrochem. Soc. ,1997 , 144 : L180 —L184
[57 ]  左晓希(Zuo X X) , 李伟善(Li W S) . CN 1 434 535 , 2005
[58 ]  Zuo X X, Xu M Q , Li W S , et al . Electrochem. Solid-State Lett . ,2006 , 9 : A196 —A199
[59 ]  许梦清(Xu M Q) , 左晓希(Zuo X X) , 李伟善(Li W S) .  CN 100 365 863C , 2008
[60 ]  Xu M Q , Zuo X X, Li W S , et al . Acta Phys. Chim. Sin. , 2006 ,22 : 335 —340
[61 ]  Xu M Q , Li W S , Zuo X X, et al . J . Power Sources , 2007 , 174 :705 —710
[62 ]  Clemencon A , Appapillai A T, Kumar S , et al . Electrochim. Acta ,2007 , 52 : 4572 —4580
[63 ]  Zhang Z R , Gong Z L , Yang Y. J . Phys. Chem. B , 2004 , 108 :17546 —17552
[64 ]  Andersson A M, Abraham D P , Haasch R , et al . J . Electrochem.Soc. , 2002 , 149 : A1358 —A1369
[65 ]  Edstrom K, Gustaffon T, Thomas J O. Electrochim. Acta , 2004 ,50 : 397 —403
[66 ]  Nakayama N , Nozawa T, Iriyama Y, et al . J . Power Sources , 2007 ,174 : 695 —700
[67 ]  Eriksson T, Andersson A M, Bishop A G, et al . J . Electrochem.Soc. , 2002 , 149 : A69 —A78
[68 ]  Li W T, Lucht B L. J . Electrochem. Soc. , 2006 , 153 : A1617 —A1625
[69 ]  Abe K, Ushigoe Y, Yoshitake H , et al . J . Power Sources , 2006 ,153 : 328 —335
[70 ]  Lee H , Choi S , Choi S , et al . Electrochem. Commun. , 2007 , 9 :801 —806
[71 ]  Xu MQ , Li WS , Lucht B L. J . Power Sources , 2009 , 193 : 804 —809
[72 ]  Wang Y, Nakamura S , Ue M, et al . J . Am. Chem. Soc. , 2001 ,123 : 11708 —11718
[73 ]  Bader R F W, Essen H. J . Chem. Phys. , 1984 , 80 : 1943 —1960
[74 ]  Tasaki K. J . Phys. Chem. B , 2005 , 109 : 2920 —2933
[75 ]  Wang Y, Nakamura S , Tasaki K, et al . J . Am. Chem. Soc. ,2002 , 124 : 4408 —4421
[76 ]  Wang Y, Balbuena P B. J . Phys. Chem. B , 2002 , 106 : 4486 —4495
[77 ]  Hu Y, Kong W, Li H , et al . Electrochem. Commun. , 2004 , 6 :126 —131
[78 ]  Xing L D , Wang C Y, Xu M Q , et al . J . Power Sources , 2009 ,189 : 689 —692
[79 ]  Chen RJ , Wu F , Li L , et al . J . Power Sources , 2007 , 172 : 395 —403
[80 ]  Wang B , Qu Q T, Xia Q , et al . Electrochim. Acta , 2008 , 54 :816 —820
[81 ]  Zhuang X R , Pugh J K, Ross P N. J . Electrochem. Soc. , 2001 ,148 : E183 —E188

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