Aqueous batteries as grid scale energy storage solutions

被引:237
|
作者
Posada, Jorge Omar Gil [1 ]
Rennie, Anthony J. R. [1 ]
Villar, Sofia Perez [1 ]
Martins, Vitor L. [1 ,2 ]
Marinaccio, Jordan [3 ]
Barnes, Alistair [3 ]
Glover, Carol F. [3 ]
Worsley, David A. [3 ]
Hall, Peter J. [1 ]
机构
[1] Univ Sheffield, Chem & Biol Engn, Sir Robert Hadfield Bldg,Mappin St, Sheffield S1 3JD, S Yorkshire, England
[2] Univ Sao Paulo, Inst Quim, CP 26077, BR-05513970 Sao Paulo, SP, Brazil
[3] Swansea Univ, Coll Engn, SPECIFIC, Baglan Bay Innovat & Knowledge Ctr, Port Talbot SA12 7AZ, Wales
来源
基金
英国工程与自然科学研究理事会; 巴西圣保罗研究基金会;
关键词
Aqueous batteries; Lead acid batteries; NiFe; Energy storage; Metal air; LEAD-ACID-BATTERIES; BETA-NICKEL HYDROXIDE; LITHIUM-ION BATTERY; ELECTROCHEMICAL PERFORMANCE; CURRENT COLLECTORS; LIGHTWEIGHT GRIDS; IRON ELECTRODE; POWER; CARBON; OXIDE;
D O I
10.1016/j.rser.2016.02.024
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Energy storage technologies are required to make full use of renewable energy sources, and electrochemical cells offer a great deal flexibility in the design of energy systems. For large scale electrochemical storage to be viable, the materials employed and device production methods need to be low cost, devices should be long lasting and safety during operation is of utmost importance. Energy and power densities are of lesser concern. For these reasons, battery chemistries that make use of aqueous electrolytes are favorable candidates where large quantities of energy need to be stored. Herein we describe several different aqueous based battery chemistries and identify some of the research challenges currently hindering their wider adoption. Lead acid batteries represent a mature technology that currently dominates the battery market, however there remain challenges that may prevent their future use at the large scale. Nickel-iron batteries have received a resurgence of interest of late and are known for their long cycle lives and robust nature however improvements in efficiency are needed in order to make them competitive. Other technologies that use aqueous electrolytes and have the potential to be useful in future large-scale applications are briefly introduced. Recent investigations in to the design of nickel-iron cells are reported with it being shown that electrolyte decomposition can be virtually eliminated by employing relatively large concentrations of iron sulfide in the electrode mixture, however this is at the expense of capacity and cycle life. (C) 2016 The Authors. Published by Elsevier Ltd.
引用
收藏
页码:1174 / 1182
页数:9
相关论文
共 50 条
  • [21] Challenges and future perspectives on sodium and potassium ion batteries for grid-scale energy storage
    Zhang, Wenchao
    Lu, Jun
    Guo, Zaiping
    MATERIALS TODAY, 2021, 50 : 400 - 417
  • [22] Hydrogen or batteries for grid storage? A net energy analysis
    Pellow, Matthew A.
    Emmott, Christopher J. M.
    Barnhart, Charles J.
    Benson, Sally M.
    ENERGY & ENVIRONMENTAL SCIENCE, 2015, 8 (07) : 1938 - 1952
  • [23] Grid-Scale Energy Storage Systems
    Chalamala, Babu R.
    Rosewater, David
    Preger, Yuliya
    Wittman, Reed
    Lamb, Joshua
    Kashiwakura, Akira
    IEEE ELECTRIFICATION MAGAZINE, 2021, 9 (04): : 19 - 28
  • [24] Perspectives on Advanced Lithium-Sulfur Batteries for Electric Vehicles and Grid-Scale Energy Storage
    Ni, Wei
    NANOMATERIALS, 2024, 14 (12)
  • [25] Zinc ion Batteries: Bridging the Gap from Academia to Industry for Grid-Scale Energy Storage
    Liu, Sailin
    Zhang, Ruizhi
    Wang, Cheng
    Mao, Jianfeng
    Chao, Dongliang
    Zhang, Chaofeng
    Zhang, Shilin
    Guo, Zaiping
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2024, 63 (17)
  • [26] A hybrid energy storage solution based on supercapacitors and batteries for the grid integration of utility scale photovoltaic plants
    Diaz-Gonzalez, Francisco
    Chillon-Anton, Cristian
    Llonch-Masachs, Marc
    Galceran-Arellano, Samuel
    Rull-Duran, Joan
    Bergas-Jane, Joan
    Bullich-Massague, Eduard
    JOURNAL OF ENERGY STORAGE, 2022, 51
  • [27] Energy Storage Chemistry in Aqueous Zinc Metal Batteries
    Wan, Fang
    Zhou, Xunzhu
    Lu, Yong
    Niu, Zhiqiang
    Chen, Jun
    ACS ENERGY LETTERS, 2020, 5 (11): : 3569 - 3590
  • [28] Aqueous organic flow batteries for sustainable energy storage
    Krishnamurti, Vinayak
    Yang, Bo
    Murali, Advaith
    Patil, Sairaj
    Prakash, G. K. Surya
    Narayan, Sri
    CURRENT OPINION IN ELECTROCHEMISTRY, 2022, 35
  • [29] Power Electronics for Grid-Scale Energy Storage
    Grainger, Brandon M.
    Reed, Gregory F.
    Sparacino, Adam R.
    Lewis, Patrick T.
    PROCEEDINGS OF THE IEEE, 2014, 102 (06) : 1000 - 1013
  • [30] Cloud energy storage for grid scale applications in the UK
    Rappaport, Ron D.
    Miles, John
    ENERGY POLICY, 2017, 109 : 609 - 622