Energy Storage Science and Technology ›› 2018, Vol. 7 ›› Issue (4): 639-645.doi: 10.12028/j.issn.2095-4239.2018.0075
Previous Articles Next Articles
ZHONG Ming1,2, YAN Wei1, WANG Jiachao2, WANG Jing2, LI Linghong2
Received:
2018-05-17
Revised:
2018-05-21
Online:
2018-07-01
Published:
2018-07-01
CLC Number:
ZHONG Ming, YAN Wei, WANG Jiachao, WANG Jing, LI Linghong. Research progress on pre-lithiation in carbon-based lithium-ion capacitor[J]. Energy Storage Science and Technology, 2018, 7(4): 639-645.
[1] 安仲勋, 颜亮亮, 夏恒恒, 等. 锂离子电容器研究进展及示范应用[J]. 中国材料进展, 2016, 35(7):528-536. AN Zhongxun, YAN Liangliang, XIA Hengheng, et al. Research progress and pilot application of lithium-ion capacitor[J]. Materials China, 2016, 35(7):528-536. [2] UNO M, TANAKA K. Spacecraft electrical power system using lithium-ion capacitors[J]. IEEE Transactions on Aerospace and Electronic Systems, 2013, 49(1):175-188. [3] SIVAKKUMAR S R, PANDOLFO A G. Evaluation of lithium-ion capacitors assembled with pre-lithiated graphite anode and activated carbon cathode[J]. Electrochimica Acta, 2012, 65:280-287. [4] KIM H, PARK K Y, CHO M Y, et al. High-performance hybrid supercapacitor based on graphene-wrapped Li4Ti5O12 and activated carbon[J]. ChemElectroChem, 2014(1):125-130. [5] 曾福娣, 阮殿波, 傅冠生. 锂离子电容器产业前沿技术研究进展[J]. 化学通报, 2015, 78(6):518-524. ZENG Fudi, RUAN Dianbo, FU Guansheng. Research progress of lithium ion capacitor industrial frontier technology[J]. Chemistry Bulletin, 2015, 78(6):518-524. [6] 张进, 王静, 时志强. 炭基锂离子电容器的研究进展[J]. 储能科学与技术, 2016, 5(6):807-815. ZHANG Jin, WANG Jing, SHI Zhiqiang. Research progress of carbon-based lithium ion capacitor[J]. Energy Storage Science and Technology, 2016, 5(6):807-815. [7] 郑宗敏, 张鹏, 阎兴斌. 锂离子混合超级电容器电极材料研究进展[J]. 科学通报, 2013, 58:3115-3123. ZHENG Zongmin, ZHANG Peng, YAN Xingbin. Progress in electrode materials for lithium ion hybrid supercapacitors[J]. Chinese Science Bulletin, 2013, 58:3115-3123. [8] 袁美蓉, 王臣, 徐永进, 等. 锂离子电容器的研究进展[J]. 材料导报, 2013, 27(21):140-144. YUAN Meirong,WANG Chen,XU Yongjin, et al. Research progress on lithium ion capacitors[J]. Materials Review, 2013, 27(21):140-144. [9] 王金才, 李峰, 刘畅, 等. 锂离子电池碳负极材料的研究现状与发展[J]. 腐蚀科学与防护技术, 2004, 16(5):300. WANG Jincai, LI Feng, LIU Chang, et al. Research status and development of carbon negative electrode materials for lithium ion batteries[J]. Corrosion Science and Protection Technology, 2004, 16(5):300. [10] GISELLE S, RANDALL W E, KATHLEEN C A. New carbon electrodes for secondary lithium batteries[J]. Journal of the Electrochemical Society, 1996, 143(5):L95-L98. [11] 明海, 明军, 邱景义, 等. 预锂化技术在能源存储中的应用[J]. 储能科学与技术, 2017, 6(2):11-24. MING Hai, MING Jun, QIU Jingyi, et al. Applications of pre-lithiation technologies in energy storage[J]. Energy Storage Science and Technology, 2017, 6(2):11-24. [12] 聂平, 徐桂银, 蒋江民, 等. 预锂化技术及其在高比能硅负极中的应用[J]. 储能科学与技术, 2017, 6(5):889-903. NIE Ping, XU Guiyin, JIANG Jiangmin, et al. Prelithiation technologies and application in high energy silicon anodes[J]. Energy Storage Science and Technology, 2017, 6(5):889-903. [13] 赵智星, 李相均, 金倍均.锂离子电容器:201110321951.5[P]. 2012-07-04. ZHAO Z, LI X, JIN B. Lithium ion capacitor:CN, 201110321951.5[P]. 2012-07-04. [14] MIN-SIK P, YOUNG-GEUN L, JIN-HWA K, et al. A novel lithium-doping approach for an advanced lithium ion capacitor[J]. Adv. Energy Mater., 2011, 1:1002-1006. [15] SUN X Z, ZHANG X, ZHANG H T, et al. High performance lithium-ion hybrid capacitors with pre-lithiated hard carbon anodes and bifunctional cathode electrodes[J]. Journal of Power Sources, 2014, 270:318-325. [16] ZOWSKI J E P, FIC K, CROSNIER O, et al. Use of sacrificial lithium nickel oxide for loading graphitic anode in Li-ion capacitors[J]. Electrochimica Acta, 2016, 206:440-445. [17] ZHANG S S. Eliminating pre-lithiation step for making high energy density hybrid Li-ion capacitor[J]. Journal of Power Sources, 2017, 343:322-328. [18] 吴锋, 朱岳锋, 陈实,等. 一种锂离子电容器负极的预嵌锂方法:200710098687.7[P]. 2008-08-27. WU F, ZHU Y, CHEN S, et al. A negative electrode pre-lithiation method for lithium ion capacitor:CN, 200710098687.7[P]. 2008-08-27. [19] 刘继波, 张耀伟, 黄浩宇. 一种大功率预嵌锂负极混合不对称超级电容器极片及其制造方法:201210085927.0[P]. 2012-07-25. LIU J, ZHANG Y, HUANG H. A pre-lithiation method for negative electrode of hybrid asymmetric supercapacitor with high power:CN, 201210085927.0[P]. 2012-07-25. [20] 颜亮亮, 安仲勋, 吴明霞, 等. 一种锂离子电容器负极新型预嵌锂方法:201511009490.2[P]. 2016-05-18. YAN L, AN Z, WU M, et al. A new negative electrode pre-lithiation method for lithium ion capacitor:CN, 201511009490.2[P]. 2016-05-18. [21] 王晓峰, 尤政. 一种锂离子电容器的嵌锂方法:201610985362.X[P]. 2017-02-15. WANG X, YOU Z. A lithium doping method for lithium ion capacitor:CN, 201610985362.X[P]. 2017-02-15. [22] 代波, 丁帮助. 混合超级电容器负极预嵌锂方法:201410336412.2[P]. 2015-01-28. DAI B, DING B. A pre-lithiation method for negative electrode of hybrid supercapacitor:CN, 201410336412.2[P]. 2015-01-28. [23] 郑俊生, 章磊, 黄军, 等. 负极预嵌锂对锂离子电容器性能的影响[J]. 同济大学学报(自然科学版), 2017, 45(11):1701-1706. ZHENG Junsheng, ZHANG Lei, HUANG Jun, et al. Impact of the pre-inserted lithium ion in negative electrode for lithium ion capacitors[J]. Journal of Tongji University (Natural Science), 2017, 45(11):1701-1706. [24] CAO W J, ZHENG J P. Li-ion capacitors with carbon cathode and hard carbon/stabilized lithium metal powder anode electrodes[J]. Journal of Power Sources, 2012, 213:180-185. [25] 王臣, 陈宇澄, 赵方辉, 等. 锂离子电容器及其负极极片及制备方法:201210585579.3[P]. 2013-04-03. WANG C, CHEN Y, ZHAO F, et al. Lithium ion capacitor and its negative electrode preparation method:CN, 201210585579.3[P]. 2013-04-03. [26] 梁亚青, 廖运平, 闵凡奇. 一种新型预嵌锂的负极片及其制备方法:201510575401.4[P]. 2016-01-13. LIANG Y, LIAO Y, MIN F. A novel pre-lithiation negative electrode sheet and preparation method:CN, 201510575401.4[P]. 2016-01-13. [27] 李相均, 赵智星, 金倍均. 制造锂离子电容器的方法以及利用其制造的锂离子电容器:201110141359.7[P]. 2012-03-21. LI X, ZHAO Z, JIN J. Lithium ion capacitor manufacturing method and its product:CN, 201110141359.7[P]. 2012-03-21. [28] 田口博基, 田崎信一, 安东信雄, 等. 锂离子电容器:200710145884.X[P]. 2008-03-12. TIAN K, TIAN Q, AN D, et al. Lithium ion capacitor:CN, 200710145884.X[P]. 2008-03-12. [29] 袁美蓉, 刘伟强, 徐永进. 锂离子电容器负极预嵌锂的方法:201310001315.3[P]. 2014-07-09. YUAN M, LIU W, XU Y. Lithium ion capacitor cathode pre-lithiation method:CN, 201310001315.3[P]. 2014-07-09. [30] SUN X Z, ZHANG X, LIU W J, et al. Electrochemical performances and capacity fading behaviors of activated carbon/hard carbon lithium ion capacitor[J]. Electrochimica Acta, 2017, 235:158-166. [31] 吴明霞, 安仲勋, 曹小卫, 等. 一种内结合超级电容器:201210557616.X[P]. 2016-03-23. WU M, AN Z, CAO X, et al. An internally-coupled supercapacitor:CN, 201210557616.X[P]. 2016-03-23. [32] JIN L, ZHENG J, WU Q, et al. Exploiting a hybrid lithium ion power source with a high energy density over 30 W·h/kg[J]. Materials Today Energy, 2018, 7:51-57. [33] 阮殿波, 曾福娣, 付冠生. 一种锂离子电容器的新型预嵌锂方法:201410764686.1[P]. 2015-06-03. RUAN D, ZENG F, FU G. A novel lithium pre-insertion method for lithium ion capacitor:CN, 201410764686.1[P]. 2015-06-03. [34] 王成扬, 刘源源, 陈明鸣, 等. 采用预锂化硬炭负极的锂离子电容器的制备方法:201410797376.X[P]. 2015-04-22. WANG C, LIU Y, CHEN M, et al. Preparation method of lithium ion capacitor using pre-lithiated hard carbon negative electrode:CN, 201410797376.X[P]. 2015-04-22. [35] 张霞,李晶, 彭汝芳, 等. 预嵌锂石墨负极超级电容器的性能[J]. 电池, 2015, 45(5):11-24. ZHANG Xia, LI Jin, PENG Rufang, et al. Performance of supercapacitor using pre-lithiation graphite as anode[J]. Battery Bimonthly, 2015, 45(5):11-24. [36] KIM M, XU F, LEE J H, et al. A fast and efficient pre-doping approach to high energy density lithium-ion hybrid capacitors[J]. Journal of Materials Chemistry A, 2014, 2:10029-10033. [37] REN J J, SU L W, QIN X, et al. Pre-lithiated graphene nanosheets as negative electrode materials for Li-ion capacitors with high power and energy density[J]. Journal of Power Sources, 2014, 264:108-113. [38] 徐启远, 徐永进, 朱永法, 等. 锂离子电容器集流体用穿孔箔的研究进展[J]. 材料导报, 2013, 27(12):28-31. XU Qiyuan, XU Yongjin, ZHU Yongfa, et al. Research progress on perforated foil of electrode collector for lithium ion capacitor[J]. Materials Review, 2013, 27(12):28-31. [39] SHELLIKERI A, WATSON V, ADAMS D, et al. Investigation of pre-lithiation in graphite and hard-carbon anodes using different lithium source structures[J]. Journal of the Electrochemical Society, 2017, 164(14):A3914-A3924. [40] ZHANG J, LIU X F, WANG J, et al. Different types of pre-lithiated hard carbon as negative electrode material for lithium-ion capacitors[J]. Electrochimica Acta, 2016, 187:134-142. [41] 平丽娜, 郑嘉明, 时志强, 等. 以预锂化中间相碳微球为负极的锂离子电容器的电化学性能[J]. 物理化学学报, 2012, 28(7):1733-1738. PING Lina, ZHENG Jiaming, SHI Zhiqiang, et al. Electrochemical performance of lithium ion capacitors using Li+-intercalated mesocarbon microbeads as the negative electrode[J]. Acta Physico-Chimica Sinica, 2012, 28(7):1733-1738. [42] ZHANG J, SHI Z Q, WANG C Y. Effect of pre-lithiation degrees of mesocarbon microbeads anode on the electrochemical performance of lithium-ion capacitors[J]. Electeochimica Acta, 2014, 125:22-28. [43] ZHANG J, WU H Z, WANG J, et al. Pre-lithiation design and lithium ion intercalation plateaus utilization of mesocarbon microbeads anode for lithium-ion capacitors[J]. Electeochimica Acta, 2015, 182:156-164. [44] 刘嫄嫄, 时志强, 乔志军, 等. 大容量锂离子电容器用锂化硬炭负极[J]. 化学工业与工程, 2015, 32(6):36-40. LIU Yuanyuan, SHI Zhiqiang, QIAO Zhijun, et al. High energy lithium ion capacitor with pre-lithiated hard carbon anode[J]. Chemical Industry and Engineering, 2015, 32(6):36-40. [45] YUAN M R, LIU W Q, ZHU Y F, et al. Electrochemical performance of pre-lithiated graphite as negative electrode in lithium-ion capacitors[J]. Russian Journal of Electrochemistry, 2014, 50(11):1050-1057. [46] 袁美蓉, 刘伟强, 朱永法, 等. 负极预嵌锂方式对锂离子电容器性能的影响[J]. 材料导报, 2013, 27(8):14-16. YUAN Meirong, LIU Weiqiang, ZHU Yongfa, et al. Influence of Li intercalation mode on the performance of lithium ion capacitors[J]. Materials Review, 2013, 27(8):14-16. [47] 孙现众, 马衍伟, 张熊. 锂离子电容器负极的预嵌锂方法:201510522888.X[P]. 2015-11-25. SUN X, MA Y, ZHANG X. Lithium ion capacitor cathode pre-lithiation method:CN, 105097293A[P]. 2015-11-25. [48] 吴明霞, 安仲勋, 黄廷立, 等. 锂离子电容器及其化成方法:201510947373.4[P]. 2016-02-24. WU M, AN Z, HUANG T, et al. Lithium-ion capacitor and its formation method:CN, 201510947373.4[P]. 2016-02-24. |
[1] | Ce ZHANG, Siwu LI, Jia XIE. Research progress on the prelithiation technology of alloy-type anodes [J]. Energy Storage Science and Technology, 2022, 11(5): 1383-1400. |
[2] | Yuhe YUAN, liang LIU, Hongtao ZHANG, Qizheng YI, Yongpeng ZHANG, Yanzhe GUO, Wenchang YUAN, Xichao LI. Study on self-discharge detection method of lithium-ion capacitors [J]. Energy Storage Science and Technology, 2022, 11(2): 690-696. |
[3] | Yimin GUO, Dechao GUO, Qiwen ZHANG, Chao LONG, Fengrong HE. Influences of electrode structure on the electrical performances of lithium-ion capacitor [J]. Energy Storage Science and Technology, 2021, 10(6): 2106-2111. |
[4] | Weihui LI, Xingguo ZHONG, Huiqiao LI. The passivation of Li anode and its application in energy storage [J]. Energy Storage Science and Technology, 2021, 10(3): 974-986. |
[5] | Chenlu YU, Xiaohua TIAN, Zhejuan ZHANG, Zhuo SUN. Research progress of specific capacity improvements of silicon-based anodes in lithium-ion batteries [J]. Energy Storage Science and Technology, 2020, 9(6): 1614-1628. |
[6] | LIU Tengyu, ZHANG Xiong, AN Yabin, LI Chen, MA Yanwei. Research progress on the application of graphene for lithium-ion capacitors [J]. Energy Storage Science and Technology, 2020, 9(4): 1030-1043. |
[7] | CHENG Guangyu, LIU Xinwei, GU Honghui, GAO Lei, WANG Ke. Effect of pre-lithiation on storage life of lithium-ion batteries [J]. Energy Storage Science and Technology, 2020, 9(2): 626-632. |
[8] | CHEN Yongzhen, LI Hualing, SONG Wenji, TU Xiaolin, FENG Ziping. A review on recycling technology of spent lithium iron phosphate battery [J]. Energy Storage Science and Technology, 2019, 8(2): 237-247. |
[9] | ZHAO Xingru, AN Qi, MA Xiangdong, LIU Jin, WU Zhiyong, LIU Wenjie, ZHANG Xiong. Research progress of metal oxides as anode materials for lithium ion capacitors [J]. Energy Storage Science and Technology, 2018, 7(4): 555-564. |
[10] | ZHANG Shiming1,2, CHE Haiying1, YANG Ke1, YANG Xinrong1, ZHENG Dan2, MA Zifeng1,2. Development of hybrid electrochemical energy storage device based on LiFePO4 and activated carbon [J]. Energy Storage Science and Technology, 2018, 7(2): 240-247. |
[11] | ZHANG Huimin1,2,3, MING Hai 1,3, ZHANG Wenfeng1,3, WEN Yuehua1,3, YANG Yusheng1,3,MING Jun4. Non-aqueous sodium-ion batteries based on the anode of non-metallic sodium [J]. Energy Storage Science and Technology, 2017, 6(6): 1159-. |
[12] | MING Hai1,2, MING Jun3, QIU Jingyi1,2, ZHANG Wenfeng1,2, ZHANG Songtong1,2, CAO Gaoping1,2. Applications of pre-lithiation technologies in energy storage [J]. Energy Storage Science and Technology, 2017, 6(2): 223-236. |
[13] | ZHANG Jin, WANG Jing, SHI Zhiqiang. Research progress of carbon-based lithium ion capacitor [J]. Energy Storage Science and Technology, 2016, 5(6): 807-815. |
[14] | ZHANG Shijia, ZHANG Xiong, SUN Xianzhong, ZHAO Feifei, JIA Junxiang, MA Yanwei. Effect of the pre-lithiation capacity of mesocarbon microbeads anode on the performances of a flexible packaging lithium ion capacitors#br# [J]. Energy Storage Science and Technology, 2016, 5(6): 834-840. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||