超级电容器电极材料研究进展

张紫瑞1,2, 赵云鹏2, 张颖2, 黄雨欣2, 张子怡2, 杜卫民1,2*

化工新型材料 ›› 2019, Vol. 47 ›› Issue (12) : 1 -5.

PDF (1217KB)
化工新型材料 ›› 2019, Vol. 47 ›› Issue (12) : 1-5.
综述与专论

超级电容器电极材料研究进展

    张紫瑞1,2, 赵云鹏2, 张颖2, 黄雨欣2, 张子怡2, 杜卫民1,2*
作者信息 +

Research progress of electrode material of supercapacitor

  • Zhang Zirui1,2, Zhao Yunpeng2, Zhang Ying2, Huang Yuxin2, Zhang Ziyi2, Du Weimin1,2
Author information +
文章历史 +
PDF (1245K)

摘要

作为一种介于电池和传统电容器之间的新型储能装置,超级电容器在性能方面很大程度上缩小了两者之间的差距。总结了适用于超级电容器的各种电极材料,按照储能机理的差异对其进行分类,总结了不同类型超级电容器的最新研究成果,并举例说明了不同类型超级电容器的优缺点。

Abstract

As a new energy storage system device between a battery and a conventional capacitor,supercapacitors greatly reduce the gap in terms of performance.The various electrode materials applicable to supercapacitors were summarized,classified the supercapacitors according to the differences in energy storage mechanisms,The latest research results of various types of supercapacitors were intruduced.It also illustrated the advantages and disadvantages of various types of supercapacitors.

关键词

超级电容器 / 电极材料 / 储能机理 / 研究进展

Key words

supercapacitor / electrode material / energy-storage mechanism / research progress

引用本文

引用格式 ▾
超级电容器电极材料研究进展[J]. 化工新型材料, 2019, 47(12): 1-5 DOI:

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Chen H,Cong T N,Yang W,et al.Progress in electrical energy storage system:a critical review[J].Progress in Natural Science,2009,19(3):291-312.
[2] Liu B,Tan D,Wang X,et al.Flexible,planar-integrated,all-solid-state fiber supercapacitors with an enhanced distributed-capacitance effect[J].Small,2013,9(11):1998-2004.
[3] Liu G,Yu Y,Hou J,et al.An ecological risk assessment of heavy metal pollution of the agricultural ecosystem near a lead-acid battery factory[J].Ecological Indicators,2014,47(161):210-218.
[4] Conway B E.Transition from supercapacitor to battery behavior in electrochemical energy storage[J].Journal of the Electrochemical Society,1991,138(6):1539-1547.
[5] Arico A S,Bruce P,Scrosati B,et al.Nanostructured materials for advanced energy conversion and storage devices[J].Nature Materials,2005,4(5):366-377.
[6] Winter M,Brodd R J.What are batteries,fuel cells,and supercapacitors?[J].Chemical Reviews,2004,104(10):4245-4270.
[7] Conway B E.Electrochemical supercapacitors[M].New York:Kluwer Academic/Plenum Press,1999,1-9.
[8] Becker H I.Low voltage electrolytic capacitor:US,US2800616A[P].1957-07-23.
[9] Kotz R,Carlen M.Principles and applications of electrochemical capacitors[J].Electrochimica Acta,2000,45(13):2483-2498.
[10] Fang B,Binder L.A modified activated carbon aerogel for high-energy storage in electric double layer capacitors[J].Journal of Power Sources,2006,163(1):616-622.
[11] Barisci J N,Wallace G G,Baughman R H.Electrochemical characterization of single-walled carbon nanotube electrodes[J].Joural of the Electrochemical Society,2000,147(12):4580-4583.
[12] Morishita T,Tsumura T,Toyoda M,et al.A review of the control of pore structure in MgO-templated nanoporous carbons[J].Carbon,2010,48(26):2690-2707.
[13] Wang D,Li F,Liu M,et al.3D aperiodic hierarchical porous graphitic carbon material for high-rate electrochemical capacitive energy storage[J].Angewandte Chemie International Edition,2008,47(2):373-376.
[14] Yuan Y,Zhang C,Wang C,et al.Amphiphilic carbonaceous material-based hierarchical porous carbon aerogels for supercapacitors[J].Journal of Solid State Electrochemistry,2014,19(2):619-627.
[15] Lv Y,Zhang F,Dou Y,et al.A comprehensive study on KOH activation of ordered mesoporous carbons and their supercapacitor application[J].Journal of Materials Chemistry,2012,22(1):93-99.
[16] Yang I,Kim S G,Kwon S H,et al.Pore size-controlled carbon aerogels for EDLC electrodes in organic electrolytes[J].Current Applied Physics,2016,16(6):665-672.
[17] Lijima S.Helical microtubules of graphitic carbon[J].Nature,1991,354(6348):56-58.
[18] Krivchenko V A,Maksimov Y M,Podlovchenko B I,et al.Electrochemical activation of carbon nanowalls[J].Mendeleev Communications,2011,21(5):264-265.
[19] Gong K,Du F,Xia Z,et al.Nitrogen-doped carbon nanotube arrays with high electrocatalytic activity for oxygen reduction[J].Science,2009,323(5915):760-764.
[20] Chen A,Li Y,Yu Y,et al.Nitrogen-doped hollow carbon spheres for supercapacitors application[J].Journal of Alloys and Compounds,2016,688(54):878-884.
[21] Chen A,Li Y,Liu L,et al.Controllable synthesis of nitrogen-doped hollow mesoporous carbon spheres using ionic liquids as template for supercapacitors[J].Applied Surface Science,2017,393(6):151-158.
[22] Deng Y,Xie Y,Zou K,et al.Review on recent advances in nitrogen-doped carbons:preparations and applications in supercapacitors[J].Journal of Materials Chemistry A,2016,4(87):1144-1173.
[23] Conway B E,Birss V,Wojtowicz J.The role and utilization of pseudocapacitors for energy storage by supercapacitors[J].Journal of Power Sources,1997,66(1-2):1-14.
[24] Lu M,Lu Y,Qiu K,et al.One-pot synthesized ultrathin MnO2 nanorods as advanced electrodes for high-performance supercapacitors[J].Materials Letters,2016,166(32):255-258.
[25] Patil U M,Nam M S,Sohn J S,et al.Controlled electrochemical growth of Co(OH)2 flakes on 3D multilayered graphene foam for high performance supercapacitors[J].Journal of Materials Chemistry A,2014,2(44):19075-19083.
[26] Du H,Jiao L,Cao K,et al.Polyol-mediated synthesis of mesoporous α-Ni(OH)2 with enhanced supercapacitance[J].ACS Applied Materials & Interfaces,2013,5(14):6643-6648.
[27] Tian Y,Liu Z,Xue R,et al.An efficient supercapacitor of three-dimensional MnO2 film prepared by chemical bath method[J].Journal of Alloys and Compounds,2016,671(55):312-317.
[28] Zhang Y,Xia X,Kang J,et al.Hydrothermal synthesized porous Co(OH)2 nanoflake film for supercapacitor application[J].Chinese Science Bulletin,2012,57(32):4215-4219.
[29] Xu X,Shen J,Li N,et al.Microwave-assisted synthesis of graphene/CoMoO4 nanocomposites with enhanced supercapacitor performance[J].Journal of Alloys and Compounds,2014,616(21):58-65.
[30] Du W,Wang Z,Zhu Z,et al.Facile synthesis and superior electrochemical performances of CoNi2S4/graphene nanocomposite suitable for supercapacitor electrodes[J].Journal of Materials Chemistry A,2014,2(25):9613-9619.
[31] Xiong Wei,Gao Yongsheng,Wu Xu,et al.Composite of macroporous carbon with honeycomb-like structure from mollusc shell and NiCo2O4 nanowires for high-performance supercapacitor[J].ACS Applied Materials & Interfaces,2014,6(21):19416-19423.
[32] Chen W,Xia C,Alshareef H N.One-step electrodeposited nickel cobalt sulfide nanosheet arrays for high-performance asymmetric supercapacitors[J].ACS Nano,2014,8(9):9531-9541.
[33] Du W,Zhu Z,Wang Y,et al.One-step synthesis of CoNi2S4 nanoparticles for supercapacitor electrodes[J].RSC Advances,2014,4(14):6998.
[34] Leela M R A,Gowda S R,Shaijumon M M,et al.Hybrid nanostructures for energy storage applications[J].Advanced Materials,2012,24(37):5045-5064.
[35] Zhang L L,Zhao X S.Carbon-based materials as supercapacitor electrodes[J].Chemical Society Reviews,2009,38(9):2520-2531.
[36] MacDiarmid A G.“Synthetic metals”:a novel role for organic polymers (Nobel lecture)[J].Angewandte Chemie,International Edition,2001,40(14):2581-2590.
[37] 方偎,陈晓红,宋怀河,等.竹炭/聚苯胺复合材料作为超级电容器电极材料的研究[J].炭素技术,2015,34(3):15-17.
[38] Yu M,Ma Y,Liu J,et al.Polyaniline nanocone arrays synthe-sized on three dimensional graphene network by electrodeposition for supercapacitor electrodes[J].Carbon,2015,87(67):98-105.
[39] Zhang Z,Chi K,Xiao F,et al.Advanced solid-state asymmetric supercapacitors based on 3D graphene/MnO2 and graphene/poly-pyrrole hybrid architectures[J].Journal of Materials Chemistry,2015,3(24):12828-12835.
[40] Sankar K V,Seo Y,Lee S C,et al.Redox additive-improved electrochemically and structurally robust binder-free nickel pyrophosphate nanorods as superior cathode for hybrid supercapacitors[J].ACS Applied Materials & Interfaces,2018,10(9):8045-8056.

基金资助

国家留学基金委-河南省地方合作项目(201708410285);安阳市新能源汽车发展专项项目(2017-480-15)

AI Summary AI Mindmap
PDF (1217KB)

2769

访问

0

被引

导航
相关文章

AI思维导图

/