Pseudocapacitive oxide materials for high-rate electrochemical energy storage

被引:4362
|
作者
Augustyn, Veronica [1 ]
Simon, Patrice [2 ,3 ]
Dunn, Bruce [1 ]
机构
[1] Univ Calif Los Angeles, Dept Mat Sci & Engn, Los Angeles, CA 90095 USA
[2] Univ Toulouse 3, CIRIMAT UMR CNRS 5085, Dept Mat Sci, F-31062 Toulouse, France
[3] FR CNRS 3459, Reseau Stockage Electrochim Energie RS2E, Paris, France
基金
欧洲研究理事会;
关键词
HYDROGEN TITANATE NANOWIRES; VANADIUM-OXIDE; CHARGE-STORAGE; ION INTERCALATION; RUTHENIUM OXIDE; ELECTRODE MATERIAL; LITHIUM INSERTION; CARBON NANOTUBES; NI-FOAM; SUPERCAPACITOR;
D O I
10.1039/c3ee44164d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Electrochemical energy storage technology is based on devices capable of exhibiting high energy density (batteries) or high power density (electrochemical capacitors). There is a growing need, for current and near-future applications, where both high energy and high power densities are required in the same material. Pseudocapacitance, a faradaic process involving surface or near surface redox reactions, offers a means of achieving high energy density at high charge-discharge rates. Here, we focus on the pseudocapacitive properties of transition metal oxides. First, we introduce pseudocapacitance and describe its electrochemical features. Then, we review the most relevant pseudocapacitive materials in aqueous and non-aqueous electrolytes. The major challenges for pseudocapacitive materials along with a future outlook are detailed at the end.
引用
收藏
页码:1597 / 1614
页数:18
相关论文
共 50 条
  • [21] High-rate, high-capacity electrochemical energy storage in hydrogen-bonded fused aromatics
    Chen, Tianyang
    Banda, Harish
    Yang, Luming
    Li, Jian
    Zhang, Yugang
    Parenti, Riccardo
    Dinca, Mircea
    [J]. JOULE, 2023, 7 (05) : 986 - 1002
  • [22] Growth of manganese oxide nanoflowers on vertically-aligned carbon nanotube arrays for high-rate electrochemical capacitive energy storage
    Zhang, Hao
    Cao, Gaoping
    Wang, Zhiyong
    Yang, Yusheng
    Shi, Zujin
    Gu, Zhennan
    [J]. NANO LETTERS, 2008, 8 (09) : 2664 - 2668
  • [23] High-rate energy storage in MXenes with nanoconfined fluids
    Mathis, Tyler
    Wang, Xuehang
    Gogotsi, Yury
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 256
  • [24] Recent enterprises in high-rate monolithic photo- electrochemical energy harvest and storage devices
    Turner, Daniel
    Li, Ming
    Grant, David
    Ola, Oluwafunmilola
    [J]. CURRENT OPINION IN ELECTROCHEMISTRY, 2023, 38
  • [25] Confined Space Dual-Type Quantum Dots for High-Rate Electrochemical Energy Storage
    Yang, Qingjun
    Chung, Kingyan
    Liu, Xinlong
    Sun, Lin
    Han, Jing
    Yang, Yujue
    Chen, Tiandi
    Shi, Weidong
    Xu, Bingang
    [J]. ADVANCED MATERIALS, 2024, 36 (29)
  • [26] Niobium pentoxide based materials for high rate rechargeable electrochemical energy storage
    Shen, Fei
    Sun, Zhongti
    He, Qinggang
    Sun, Jingyu
    Kaner, Richard B.
    Shao, Yuanlong
    [J]. MATERIALS HORIZONS, 2021, 8 (04) : 1130 - 1152
  • [27] Non-covalently functionalizing a graphene framework by anthraquinone for high-rate electrochemical energy storage
    An, Ning
    Zhang, Fuhai
    Hu, Zhongai
    Li, Zhimin
    Li, Li
    Yang, Yuying
    Guo, Bingshu
    Lei, Ziqiang
    [J]. RSC ADVANCES, 2015, 5 (30): : 23942 - 23951
  • [28] Mesoporous Manganese Oxide Nanowires for High-Capacity, High-Rate, Hybrid Electrical Energy Storage
    Yan, Wenbo
    Ayvazian, Talin
    Kim, Jungyun
    Liu, Yu
    Donavan, Keith C.
    Xing, Wendong
    Yang, Yongan
    Hemminger, John C.
    Penner, Reginald M.
    [J]. ACS NANO, 2011, 5 (10) : 8275 - 8287
  • [29] Lithium manganese spinel materials for high-rate electrochemical applications
    Anna VPotapenko
    Sviatoslav AKirillov
    [J]. Journal of Energy Chemistry., 2014, 23 (05) - 558
  • [30] Lithium manganese spinel materials for high-rate electrochemical applications
    Anna V.Potapenko
    Sviatoslav A.Kirillov
    [J]. Journal of Energy Chemistry, 2014, (05) : 543 - 558