期刊文献+

二维石墨烯和准二维类石墨烯在全固态柔性超级电容器中的应用 被引量:14

Two-dimensional graphene/quasi-two-dimensional graphene analogues for flexible supercapacitor in all-solid-state
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摘要 近年来,二维石墨烯和准二维无机类石墨烯材料作为电极材料广泛应用于超级电容器,随着便携式电子器件的快速发展,超薄、柔性储能器件的研发必不可少.其中,具有柔性乃至平面构型的超薄超级电容器正在迅速兴起,成为一种极具潜力及发展优势的能量存储器件,而二维材料在该类器件的构建中至关重要.本文概述了全固态柔性超级电容的构建原理,特别是二维/准二维材料在构建柔性超级电容器中的材料选择与复合提高性能,综述了平面超级电容器的发展,展望了下一代平面超级电容器在柔性能源存储器件中可能的应用前景. Two-dimensional (2D) graphene/quasi-two-dimensional inorganic materials have been widely explored for construction of energy- related applications. Catering for rapid development of portable electronic devices, energy storage devices with ultra-thin and high flexibility are urgently needed. Very recently, planar supercapacitor with novel configurations has been rapidly developed as important energy storage devices. In this regard, the assembled thin film of 2D graphene and quasi-2D graphene analogues acted as the vital role for the planar configurations as well as the enhanced performances in the construction of planar energy storage device. This review summarized the construction concept of flexible supercapacitors in all-solid-state based on 2D graphene and quasi-2D graphene analogues. We also surveyed how to select quasi-2D graphene analogues with high electrochemical properties, and even how to use the synergic advantages of hybrid structure for further performance enhancement of planar supercapacitors. Recent progresses and possible future applications on planar supercapacitors were also reviewed and outlooked.
出处 《科学通报》 EI CAS CSCD 北大核心 2013年第28期2886-2894,共9页 Chinese Science Bulletin
基金 国家重点基础研究发展计划(2009CB939901) 国家自然科学基金(21222101 11074229 11079004 11132009 J1030412) 教育部新世纪优秀人才支持计划 中央高校基本科研业务费专项(WK2340000035 WK2310000024)资助
关键词 二维材料 石墨烯 类石墨烯 高柔性 平面超级电容器 能源存储 two-dimensional materials, graphene, graphene analogues, high flexibility, planar supercapacitor, energy storage
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参考文献44

  • 1Li W, Dahn J R, Wainwright D S. Rechargeable lithium batteries with aqueous electrolytes. Science, 1994, 264:1115-1118.
  • 2Tarascon J M, Armand M. Issues and challenges facing rechargeable lithium batteries. Nature, 2001, 414:359-367.
  • 3杨勇,龚正良,吴晓彪,郑建明,吕东平.锂离子电池若干正极材料体系的研究进展[J].科学通报,2012,57(27):2570-2586. 被引量:18
  • 4Miller J R, Simon P. Electrochemical capacitors for energy management. Science, 2008, 321:651-652.
  • 5Meng C Z, Liu C H, Chen L Z, et al. Highly flexible and all-solid-state paperlike polymer supercapacitors. Nano Lett, 2010, 10 :4025-4031.
  • 6Bae J, Song M K, Park Y J, et al. Fiber supercapacitors made of nanowire-fiber hybrid structures for wearable/flexible energy storage Angew Chem Int Ed, 2011, 50:1683-1687.
  • 7Choi B G, Hong J, Hong W H, et al. Facilitated ion transport in all-solid-state flexible supercapacitors. ACS Nano, 2011, 5:7205-7213.
  • 8Wu Q, Xu Y X, Yao Z Y, et al. Supercapacitors based on flexible graphene/polyaniline nanofiber composite films. ACS Nano, 2010, 4 :1963-1970.
  • 9Wang K, Zou W J, Quan B G, et al. An all-solid-state flexible micro-supercapacitor on a chip. Adv Energy Mater, 2011, 1 : 1068-1072.
  • 10Dong X Y, Wang L, Wang D, et al. Layer-by-layer engineered Co-Al hydroxide nanosheets/graphene multilayer films as flexible elec- trode for supercapacitor. Langmuir, 2011, 28:293-298.

二级参考文献122

  • 1于维平,杨晓萍,王光明.电沉积-烧结制备掺杂C,Co的纳米NiO电极及其电容性能[J].科学通报,2004,49(11):1052-1055. 被引量:6
  • 2Tarascon J M. Key challenges in future Li-hattery research. Philos Trans R Soc A-Math Phys Eng Sci, 2010, 368:3227-3241.
  • 3Thackeray M M, Johnson C S, Vaughey J T, et al. Advances in manganese-oxide composite electrodes for lithium-ion batteries. J Mater Chem, 2005, 15:2257-2267.
  • 4Johnson C S, Kim J S, Lefief C, et al. The significance of the Li2MnO3 component in 'composite' xLizMnO3 (1-x)LiMn05Ni0.502 electrodes. Electrochem Commun, 2004, 6:1085-1091.
  • 5Thackeray M M, Kang S H, Johnson C S, et al. Li2MnO3-stabilized LiMO2 (M = Mn, Ni, Co) electrodes for lithium-ion batteries. J Mater Chem, 2007, 17:3112-3125.
  • 6Johnson C S, Li N, Lefief C, et al. Synthesis, characterization and electrochemistry of lithium battery electrodes: xLi2MnO3(l-x) LiMno 333Ni0.333Co0.333O2 (O≤x≤0.7). Chem Mater, 2008, 20:6095-6106.
  • 7Guo X J, Li Y X, Zheng M, et al. Structural and electrochemical characterization of xLi[Li1/3Mnz2/3]O2 (1-x)Li[Nil/3Mn1/3CO1/3]02 (0≤x≤0.9) as cathode materials for lithium ion batteries. J Power Sources, 2008, 184:414-419.
  • 8Strobel P, Lambert-Andron B. Crystallographic and magnetic structure of Li2MnO3. J Solid State Chem, 1988, 75:90-98.
  • 9Yoon W S, lannopollo S, Grey C P, et al. Local structure and cation ordering in O3 lithium nickel manganese oxides with stoichiometry Li[NixMn(2-x)/3Li(1-2x)/3]O2. Electrochem Solid-State Lett, 2004, 7: A 167-A 171.
  • 10Kang S H, Kempgens P, Greenbaum S, et al. Interpreting the structural and electrochemical complexity of 0.5Li2MnO3.0.5LiMO2 electrodes for lithium batteries (M=Mn0.5-xNi0.5-xCo2x, 0<x<0.5). J Mater Chem, 2007, 17:2069-2077.

共引文献22

同被引文献117

  • 1邹鹏,石文荣,杨书华,黄德欢.石墨烯的化学气相沉积法制备及其表征[J].材料科学与工程学报,2014,32(2):264-267. 被引量:25
  • 2赵慧慧,姬科举,许银松,黄正跟,戴振东.GNS/PMMA泡沫复合材料的制备及其电磁屏蔽性能[J].材料科学与工程学报,2014,32(3):358-365. 被引量:18
  • 3刘道广,陈银广.同步污水处理/发电技术-微生物燃料电池的研究进展[J].水处理技术,2007,33(4):1-5. 被引量:19
  • 4WANG Y. Supercapacitor Devices Based on Graphene Ma- terials [ J ]. The J0umal of Physical Chemistry, 2009,113 : 13103-13107.
  • 5ZHANG K, MAO L, ZHANG L L, et al. Surfactant-Intercala- ted, Chemically Reduced Graphene Oxide for High Perfor- mance Supercapacitor Electrodes [ J]. Journal of Materials Chemistry, 2011,21 (20) :7302-7307.
  • 6HE Y, CHEN W, LI X, et al. Freestanding Three-dimensio- nal Graphene/MnO2 Composite Networks as Uhralight and Flexible Supercapacitor Electrodes [ J ]. ACS nano, 2012,7 ( 1 ) : 174-182.
  • 7XUE Y. Nitrogen-doped Graphene Foams as Metal-free Coun- ter Electrodes in High-performance Dye-sensitized Solar Cells [J]. Angew Chem Int Ed Engl,2012,51:12124-12127.
  • 8LI Y. Sulfur-Nitrogen Doped Multi Walled Carbon Nanotubes Composite as a Cathode Material for Lithium Sulfur Batteries [J]. International Journal of Hydrogen Energy, 2014,39: 16073-16080.
  • 9SHAO Y. Nitrogen-doped Graphene and Its Electrochemical Applications[ J]. Journal of Materials Chemistry, 2010,20 (35) :7491-7496.
  • 10LI Y. Nitrogen-doped Graphene Quantum Dots with Oxygen- rich Functional Groups [ J]. Journal of the American Chemi- cal Society ,2012,134 : 15-18.

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