正在加载图片...
44卷第1期 赵世玺等:锂离子电池低温特性研究进展 27 2] RATNAKUMAR B V, SMART M C, HUANG C K, et al. Lithium ion ( in Chinese),2004,34(2)90-92. xploration missions J]. Eletrochim Acta, 2000, [19] BANG H J, JOACHIN H, YANG H, et al. Contribution of the 45(8-9):1513-1517 structural changes of LiNio s.1sAloosO cathodes on the exothermic 3]曾令杰,杨轲,廖小珍,等.低温用锂离子电池正负极材料研究进 reactions in Li-ion cells P ]. J Electrochem Soc, 2006, 153(4) 展[电源技术,2011,35(121596-1598 A73l-A737. ZENG Lingjie, YANG Ke, LIAO Xiaozhen et al. Chin J Power Sources, [20) BLOOM I, JONES S A, BATTAGLIA V S, et al. Effect of cathode ( in Chinese)2011,35(12):1596-1598 composition on capacity fade, impedance rise and power fade in (4 PETZL M, KASPER M, DANZER M A. Lithium plating in a high-power, lithium-ion cells [J J Power Sources, 2003, 124(2) commercial lithium-ion battery-A low-temperature aging study U]. J 538-550 Power sources,2015,275:799-807. 21]彭正顺,万春荣.合成方法对LMnO4的品体结构及电化学性能的 I5] QIAO Y Q, TU J P, WANG X L, et al. The low and high temperatur 影响[Cy第九届全国电化学会议暨全国锂离子蓄电池研讨会论文 electrochemical performances f Li, Vi(PO4)/C cathode material for 摘要集.山东,泰安,1997:162. Li-ion batteries). J Power Sources, 2012, 199: 287-292 PENG Zhengshun, WAN Chunrong. Effect of different synthesizing 阿6付庆茂,文钟晟,谢晓华,等.电化学阻抗图谱用于锂离子电池低 methods on LiMn O crystalline structure and electrochemical 门.20的研究[V第二十六届全国化学与物理电源学术年会厦 properties [/ The 9th National Conference on Electrochemistry and the Lithium Ion Battery, Shandong, 1997: 162. FU Qingmao, WEN Zhongsheng,IEⅹ taohua,etal. Application of[22]杜晓莉,邓爽,王宏伟.锰酸锂动力电池高低温性能研究电池 emical impedance technology in research on lithium-ion 工业,2012,17(3)147-149 batteries IC)/26th Annual Meeting on Power Sources, Xiamen, 2004 DU Xiaoli, DENG Shuang, WANG Hongwei. Chin Battery Ind(in 70-17 Chinese),2012,17(3):147-149 7]李青海,蒲薇华,任建国,等.锂离子电池低温性能的研究[Cy[23 ELIA G A NOBILI F TOSSICI R,eta. Nanostructured tin-carbon 2005中国储能电池与动力电池及其关键材料学术研讨会,长沙 LiNiosMn1sO lithium-ion battery operating at low temperature [J].J 2005:1l1-112. Power Sources. 2015.275: 227-233 LI Qinghai, PU Weihua, REN Jianguo,etal. The low-temperance[24]谷亦杰,孙先富,李兆龙,等.10 Ah LiFepo4锂离子电池高低温性 performance of lithium-ion batteries IC]/The 2005 China Energy 能研究[电池工业,2009,14(4)223-26 Storage and Power Battery and Key Materials Academic Symposium, GU Yijie, SUN Xianfu, LI Zhaolong, et al. Chin Battery Ind(in Chinese),2009,14(4)223-226 8]张丽娟,李法强,诸葛芹,等.锂离子二次电池低温电解液的研究卩25] XING L w, YU GG JING S,etal. Carbon- nanotube- decorated 进展盐湖研究,2009,17(2):57-62 nano-LiFePO4(@ C cathode material with superior high-rate and ZHANG LIjuan, LI Faqiang, ZHU Geqin, et al. J Salt Lake Res(in low-temperature performances for lithium-ion batteries UJ]. Adv Eng Chinese),2009,17(2)57-62. Mater,2013,3(9)1155-1160. 19] SMART M C, RATNAKUMAR B V, SURAMPUDI S Use of organic [26] YANG W, BI Y, QIN Y, et al. LiMno s Feo. 2 PO4/C cathode material esters as cosolvents in electrolytes for lithium-ion batteries wit nthesized via co-precipitation method with superior high-rate and aproved low temperature performance[J]. J Electrochem Soc, 2002, low-temperature performances for lithium-ion batteries[J]. J Power 49(4):A361-A370 Sources,2015,275:785791 [10] HUANG C K, SAKAMOTO J S, WOLFENSTINE J, et al. The limits [27] MARTHA S K, MARKovSKY B, GRINBLAT J, et al. LiMnPO4 as of low-temperature performance of Li-ion cells [J]. J Electrochem Soc advanced cathode material for rechargeable lithium batteries[J]. [ll谢晓华,解晶莹,夏保佳,锂离子电池低温充放电性能的研究U28] MARTHA S K, GRINBLAT J HAIK C,etal. LiMnosFeo?PO4An 化学世界,2008,49(10)581-583 advanced cathode material for rechargeable lithium batteries[J].Angew XIE Xiaohua, XIE Jingying, XIA Baojia. Chem World(in Chinese Chem Int ed,2009,48(45):8559-8563 2008,49(10):581-583 29]邹麟.锂离子电池负极材料的微观结构设计、制备与表征[D].北 [12] WANG C S, APPLEBY A J, LITTLE F E. Low-temperature 京:清华大学,2010 characterization of lithium-ion carbon anodes via microperturbation ZOU Lin. Micro-structural design, synthesis and characterization of measurement[J]. J Electrochem Soc, 2002, 149(6): A754-A760 anode materials for lithium ion batteries( in Chinese, dissertation ). [13] ZHANG SS, XU K, JOW T R. The low temperature performance of Beijing: Tsinghua University, 2010. Li-ion batteries]. J Power Sources, 2003, 115(1): 137-140 [3o]冯祥明,张晶品,李荣富,等. LiFePO4锂离子电池的低温性能 [14] SMART M C, WHITACRE J F, RATNAKUMAR B V, et al. 电池,2009,39(1)36-37 Electrochemical performance kinetics FENG Xiangming, ZHANG Jingjing, LI Rongfu, et al. Battery Lip(Coun Niin Mn1)l-O2 cathodes and graphite anodes in Bimonthly(in Chinese), 2009, 39(1): 36-37. w-temperature electrolytes[J]. J Power Sources,2007,168(2)(31高杰.低温锂离子电池负极材料的制备及其电化学性能研究[D 上海:复旦大学,2007 [15] BAE S, SONG H D, NAM L, et al. Quantitative performance analysis GAO Jie. Synthesis and electrochemical properties of anode materials of graphite- LiFePO4 battery working at low temperature]. Chem Eng for low-temperature lithium ion batteries (in Chinese, dissertation), Sci,2014,1l8:74-82 Shanghai: Fudan University, 2007 [16] LI J R, TANG Z L, ZHANG Z T. Excellent low-temperature lithium [32] NOBILI F, MANCINI M, DSOKE S, et al. Low-temperature behavior intercalation performance of nanostructured hydrogen titanate anodes for Li-ion batteries). J Power electrodes [J]. Electrochem Solid State Lett, 2005, 8(11): A570-A573 [17] YUAN T, YU X, CAI R, et al. Synthesis of pristine and carbon-coated [33 XU K. Charge-Transfer"process at graphite/electrolyte interface and i4TisO12 and their low-temperature electrochemical performance].J the solvation sheath structure of Li in nonaqueous electrolytes UJ].J Power Sources,2010,195(15)4997-5004 Electrochem Soc, 2007, 154(4): $9 [18]陈继涛,周恒辉,倪江锋,等.C/ LiCoO2系锂离子电池低温充放电34] SIDES C R, MARTIN C R. Nanostructured electrodes and the 性能[电池,2004,34(2)90-92 low-temperature performance of Li-ion batteries [J]. Adv Mater, 2005 CHEN Jitao, ZHOU Henghui, NI Jiangfeng, et al. Battery Bimonthly第 44 卷第 1 期 赵世玺 等:锂离子电池低温特性研究进展 · 27 · [2] RATNAKUMAR B V, SMART M C, HUANG C K, et al. Lithium ion batteries for Mars exploration missions [J]. Eletrochim Acta, 2000, 45(8-9): 1513–1517. [3] 曾令杰, 杨轲, 廖小珍, 等. 低温用锂离子电池正负极材料研究进 展[J]. 电源技术, 2011, 35(12):1596–1598. ZENG Lingjie,YANG Ke, LIAO Xiaozhen et al. Chin J Power Sources, (in Chinese) 2011, 35 (12): 1596–1598. [4] PETZL M, KASPER M, DANZER M A. Lithium plating in a commercial lithium-ion battery-A low-temperature aging study [J]. J Power Sources, 2015, 275: 799–807. [5] QIAO Y Q, TU J P, WANG X L, et al. The low and high temperature electrochemical performances f Li3V2(PO4)3/C cathode material for Li-ion batteries[J]. J Power Sources, 2012, 199: 287–292. [6] 付庆茂, 文钟晟, 谢晓华, 等. 电化学阻抗图谱用于锂离子电池低 温性能的研究[C]// 第二十六届全国化学与物理电源学术年会, 厦 门, 2004: 170–171. FU Qingmao, WEN Zhongsheng, XIE Xiaohua, et al. Application of electrochemical impedance technology in research on lithium-ion batteries [C]//26th Annual Meeting on Power Sources, Xiamen, 2004: 170–171. [7] 李青海, 蒲薇华, 任建国, 等. 锂离子电池低温性能的研究[C]// 2005中国储能电池与动力电池及其关键材料学术研讨会, 长沙, 2005: 111–112. LI Qinghai, PU Weihua, REN Jianguo, et al. The low-temperance performance of lithium-ion batteries [C]//The 2005 China Energy Storage and Power Battery and Key Materials Academic Symposium, Changsha, 2005: 111–112 [8] 张丽娟, 李法强, 诸葛芹, 等. 锂离子二次电池低温电解液的研究 进展[J]. 盐湖研究, 2009, 17(2): 57–62. ZHANG Lijuan, LI Faqiang, ZHU Geqin, et al. J Salt Lake Res (in Chinese), 2009, 17(2): 57–62. [9] SMART M C, RATNAKUMAR B V, SURAMPUDI S. Use of organic esters as cosolvents in electrolytes for lithium-ion batteries with improved low temperature performance[J]. J Electrochem Soc, 2002, 149(4): A361–A370. [10] HUANG C K, SAKAMOTO J S, WOLFENSTINE J, et al. The limits of low-temperature performance of Li-ion cells [J]. J Electrochem Soc, 2000, 147(8): 2893–2896. [11] 谢晓华, 解晶莹, 夏保佳. 锂离子电池低温充放电性能的研究[J]. 化学世界, 2008, 49(10): 581–583. XIE Xiaohua, XIE Jingying, XIA Baojia. Chem World (in Chinese), 2008, 49(10): 581–583. [12] WANG C S, APPLEBY A J, LITTLE F E. Low-temperature characterization of lithium-ion carbon anodes via microperturbation measurement[J]. J Electrochem Soc, 2002, 149(6): A754–A760. [13] ZHANG S S, XU K, JOW T R. The low temperature performance of Li-ion batteries[J]. J Power Sources, 2003, 115(1): 137–140. [14] SMART M C, WHITACRE J F, RATNAKUMAR B V, et al. Electrochemical performance and kinetics of Li1+x(Co1/3Ni1/3Mn1/3)1-xO2 cathodes and graphite anodes in low-temperature electrolytes[J]. J Power Sources, 2007, 168(2): 501–508. [15] BAE S, SONG H D, NAM I, et al. Quantitative performance analysis of graphite-LiFePO4 battery working at low temperature[J]. Chem Eng Sci, 2014, 118: 74–82. [16] LI J R, TANG Z L, ZHANG Z T. Excellent low-temperature lithium intercalation performance of nanostructured hydrogen titanate electrodes [J]. Electrochem Solid State Lett, 2005, 8(11): A570–A573. [17] YUAN T, YU X, CAI R, et al. Synthesis of pristine and carbon-coated Li4Ti5O12 and their low-temperature electrochemical performance[J]. J Power Sources, 2010, 195(15): 4997–5004. [18] 陈继涛, 周恒辉, 倪江锋, 等. C/LiCoO2系锂离子电池低温充放电 性能[J]. 电池, 2004, 34(2): 90–92. CHEN Jitao, ZHOU Henghui, NI Jiangfeng, et al. Battery Bimonthly (in Chinese), 2004, 34(2): 90–92. [19] BANG H J, JOACHIN H, YANG H, et al. Contribution of the structural changes of LiNi0.8Co0.15Al0.05O2 cathodes on the exothermic reactions in Li-ion cells [J]. J Electrochem Soc, 2006, 153(4): A731–A737. [20] BLOOM I, JONES S A, BATTAGLIA V S, et al. Effect of cathode composition on capacity fade, impedance rise and power fade in high-power, lithium-ion cells [J]. J Power Sources, 2003, 124(2): 538–550. [21] 彭正顺, 万春荣. 合成方法对LiMn2O4的晶体结构及电化学性能的 影响[C]//第九届全国电化学会议暨全国锂离子蓄电池研讨会论文 摘要集. 山东, 泰安, 1997: 162. PENG Zhengshun, WAN Chunrong. Effect of different synthesizing methods on LiMn2O4 crystalline structure and electrochemical properties [C]// The 9th National Conference on Electrochemistry and the Lithium Ion Battery , Shandong, 1997: 162. [22] 杜晓莉, 邓爽, 王宏伟. 锰酸锂动力电池高低温性能研究[J]. 电池 工业, 2012, 17(3): 147–149. DU Xiaoli, DENG Shuang, WANG Hongwei. Chin Battery Ind (in Chinese), 2012, 17(3): 147–149 [23] ELIA G A, NOBILI F, TOSSICI R, et al. Nanostructured tin-carbon/ LiNi0.5Mn1.5O4 lithium-ion battery operating at low temperature [J]. J Power Sources, 2015, 275: 227–233. [24] 谷亦杰, 孙先富, 李兆龙, 等. 10Ah LiFePO4锂离子电池高低温性 能研究[J]. 电池工业, 2009, 14(4): 223–226. GU Yijie, SUN Xianfu, LI Zhaolong, et al. Chin Battery Ind (in Chinese), 2009, 14(4):223–226 [25] XING L W, YU G G, JING S, et al. Carbon-nanotube-decorated nano-LiFePO4 @ C cathode material with superior high-rate and low-temperature performances for lithium-ion batteries [J]. Adv Eng Mater, 2013, 3(9): 1155–1160. [26] YANG W, BI Y, QIN Y, et al. LiMn0.8Fe0.2PO4/C cathode material synthesized via co-precipitation method with superior high-rate and low-temperature performances for lithium-ion batteries[J]. J Power Sources, 2015, 275: 785–791. [27] MARTHA S K, MARKOVSKY B, GRINBLAT J, et al. LiMnPO4 as an advanced cathode material for rechargeable lithium batteries[J]. J Electrochem Soc, 2009, 156(7): A541–A552. [28] MARTHA S K, GRINBLAT J, HAIK O, et al. LiMn0.8Fe0.2PO4: An advanced cathode material for rechargeable lithium batteries[J]. Angew Chem Int Ed, 2009, 48(45): 8559–8563. [29] 邹麟. 锂离子电池负极材料的微观结构设计、制备与表征 [D]. 北 京: 清华大学, 2010. ZOU Lin. Micro-structural design, synthesis and characterization of anode materials for lithium ion batteries(in Chinese, dissertation). Beijing: Tsinghua University, 2010. [30] 冯祥明, 张晶晶, 李荣富, 等. LiFePO4锂离子电池的低温性能[J]. 电池, 2009, 39(1): 36–37. FENG Xiangming, ZHANG Jingjing, LI Rongfu, et al. Battery Bimonthly(in Chinese), 2009, 39(1): 36–37. [31] 高杰. 低温锂离子电池负极材料的制备及其电化学性能研究[D]. 上海: 复旦大学, 2007. GAO Jie. Synthesis and electrochemical properties of anode materials for low-temperature lithium ion batteries (in Chinese, dissertation), Shanghai: Fudan University, 2007. [32] NOBILI F, MANCINI M, DSOKE S, et al. Low-temperature behavior of graphite-tin composite anodes for Li-ion batteries[J]. J Power Sources, 2010, 195(20): 7090–7097. [33] XU K. "Charge-Transfer" process at graphite/electrolyte interface and the solvation sheath structure of Li+ in nonaqueous electrolytes [J]. J Electrochem Soc, 2007, 154(4): S9. [34] SIDES C R, MARTIN C R. Nanostructured electrodes and the low-temperature performance of Li-ion batteries [J]. Adv Mater, 2005, 17(1): 125
<<向上翻页向下翻页>>
©2008-现在 cucdc.com 高等教育资讯网 版权所有