Improving the Volumetric Energy Density of Supercapacitors

被引:33
|
作者
Goubard-Bretesche, Nicolas [1 ,2 ,3 ]
Crosnier, Olivier [1 ,3 ]
Favier, Frederic [2 ,3 ]
Brousse, Thierry [1 ,3 ]
机构
[1] Univ Nantes, CNRS UMR 6502, Inst Mat Jean Rouxel IMN, F-44322 Nantes 3, France
[2] Univ Montpellier, CNRS UMR 5253, Inst Charles Gerhardt Montpellier, Campus Triolet, F-34095 Montpellier 5, France
[3] CNRS FR 3459, Reseau Stockage Electrochim Energie, F-80039 Amiens, France
关键词
supercapacitor; volumetric energy density; EDLC; aqueous eletrolyte; device; ELECTROCHEMICAL CAPACITORS; PERFORMANCE; BEHAVIOR; OXIDES; POWER; MNO2;
D O I
10.1016/j.electacta.2016.01.171
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Due to the low double-layer capacitance of activated carbons (<20 mu F cm(-2)) and to their low density related to their large micro/meso porosity, the volumetric energy density of commercial supercapacitors remains low. Therefore, the use of pseudocapacitive oxides or nitrides as electrode materials can drastically improve the volumetric performance. However, there is currently a lack of reliable tools to extrapolate the performance of a 1 cm(2) electrode to a real life cell of several thousand farads. In this paper, we provide a calculation tool to extrapolate the cell capacitance and the energy density both from a gravimetric and volumetric point of view in a 399 cm(3) device. The calculation datasheet indicates that in order to improve the volumetric energy density of supercapacitors, it is crucial to lower the electrodes porosity down to 30-40%. Similarly, the use of high-density pseudocapacitive oxides greatly enhances the volumetric energy density of the related devices. Combining both parameters (porosity of 30%, density of 4.5 g cm(-3), active material capacitance of 250 F g(-1)) can lead to a 28000 F device compared to only 3000 F for a commercial cell of the same volume. The design of asymmetric aqueous devices by combining two high-density pseudocapacitive oxides with reasonable specific capacitance (approximate to 100 F g(-1)) is also an interesting way to further improve the cell voltage and subsequently the volumetric energy density. Additionally, the use of aqueous electrolytes enhances the safety of the cells. Finally, the provided spreadsheet will help to envision different associations of pseudocapacitive and/or capacitive materials and to predict their performance when used in real life cells. (c) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:458 / 463
页数:6
相关论文
共 50 条
  • [21] Nanocrystalline FeWO4 as a pseudocapacitive electrode material for high volumetric energy density supercapacitors operated in an aqueous electrolyte
    Goubard-Bretesche, Nicolas
    Crosnier, Olivier
    Payen, Christophe
    Favier, Frederic
    Brousse, Thierry
    ELECTROCHEMISTRY COMMUNICATIONS, 2015, 57 : 61 - 64
  • [22] Silk-inspired stretchable fiber-shaped supercapacitors with ultrahigh volumetric capacitance and energy density for wearable electronics
    Song, Peng
    Tao, Jie
    He, Xiaomei
    Sun, Yiming
    Shen, Xiaoping
    Zhai, Linzhi
    Yuan, Aihua
    Zhang, Dongyang
    Ji, Zhenyuan
    Li, Baolong
    CHEMICAL ENGINEERING JOURNAL, 2020, 386
  • [23] Transition metal sulfides grown on graphene fibers for wearable asymmetric supercapacitors with high volumetric capacitance and high energy density
    Cai, Weihua
    Lai, Ting
    Lai, Jianwei
    Xie, Haoting
    Ouyang, Liuzhang
    Ye, Jianshan
    Yu, Chengzhong
    SCIENTIFIC REPORTS, 2016, 6
  • [24] Controlled Functionalization of Carbonaceous Fibers for Asymmetric Solid-State Micro-Supercapacitors with High Volumetric Energy Density
    Yu, Dingshan
    Goh, Kunli
    Zhang, Qiang
    Wei, Li
    Wang, Hong
    Jiang, Wenchao
    Chen, Yuan
    ADVANCED MATERIALS, 2014, 26 (39) : 6790 - 6797
  • [25] Scalable Cable-Type Lithium-Ion Supercapacitors with High Loading Mass and Promotional Volumetric Energy Density
    Yuan, Wei
    Zou, Shuai
    Liu, Xianbin
    Liu, Kaixi
    Lv, Chao
    Xie, Ping
    Yin, Yanhong
    Li, Yesheng
    Wu, Ziping
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2020, 8 (45): : 16869 - 16877
  • [26] Sustainable Low-Cost Green Electrodes with High Volumetric Capacitance for Aqueous Symmetric Supercapacitors with High Energy Density
    Xie, Qinxing
    Bao, Rongrong
    Zheng, Anran
    Zhang, Yufeng
    Wu, Shihua
    Xie, Chao
    Zhao, Peng
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2016, 4 (03): : 1422 - 1430
  • [27] Green quasi-solid-state planar asymmetric supercapacitors with high working voltage and extraordinary volumetric energy density
    Peng, Zhongyou
    Huang, Jun
    He, Qichang
    Li, Shulong
    Tan, Licheng
    Chen, Yiwang
    JOURNAL OF MATERIALS CHEMISTRY A, 2021, 9 (25) : 14363 - 14371
  • [28] Surface Wettability Effect on Energy Density and Power Density of Supercapacitors
    Zhao, Shuangliang
    Song, Zhiying
    Qing, Leying
    Zhou, Jingmin
    Qiao, Chongzhi
    JOURNAL OF PHYSICAL CHEMISTRY C, 2022, 126 (22): : 9248 - 9256
  • [29] Improving Energy Density of Supercapacitors to Increase Hold-Up Time for Frequency Regulation in Power Grids
    Yoon, Yeoheung
    Shin, Je-Seok
    Lee, Young-Hee
    Han, Young-Hee
    Park, Byung-Jun
    Transactions of the Korean Institute of Electrical Engineers, 2024, 73 (08): : 1466 - 1470
  • [30] Nanoporous carbons for high energy density supercapacitors
    Taberna, Pierre-Louis
    Gaspard, Sarra
    RSC Green Chemistry, 2014, : 366 - 399