A lithium-air battery and gas handling system demonstrator

被引:2
|
作者
Jordan, Jack W. [1 ,2 ]
Vailaya, Ganesh [1 ]
Holc, Conrad [1 ]
Jenkins, Max [2 ,3 ]
Mcnulty, Rory C. [1 ,2 ]
Puscalau, Constantin [4 ]
Tokay, Begum [4 ]
Laybourn, Andrea [4 ]
Gao, Xiangwen [3 ]
Walsh, Darren A. [1 ,2 ]
Newton, Graham N. [1 ,2 ]
Bruce, Peter G. [2 ,3 ]
Johnson, Lee R. [1 ,2 ]
机构
[1] Univ Nottingham, Sch Chem, Nottingham Appl Mat & Interfaces Grp, Nottingham NG7 2TU, England
[2] Faraday Inst, Harwell Campus, Didcot OX11 0RA, England
[3] Univ Oxford, Dept Mat, Parks Rd, Oxford OX1 3PH, England
[4] Univ Nottingham, Fac Engn, Nottingham NG7 2RD, England
基金
英国工程与自然科学研究理事会;
关键词
LONG-CYCLE-LIFE; LI-O-2; BATTERIES; REDOX MEDIATORS; DISCHARGE; PERFORMANCE; PROTECTION; REDUCTION; CHEMISTRY; CATALYSTS; ANODE;
D O I
10.1039/d3fd00137g
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The lithium-air (Li-air) battery offers one of the highest practical specific energy densities of any battery system at >400 W h kg(system)(-1). The practical cell is expected to operate in air, which is flowed into the positive porous electrode where it forms Li2O2 on discharge and is released as O-2 on charge. The presence of CO2 and H2O in the gas stream leads to the formation of oxidatively robust side products, Li2CO3 and LiOH, respectively. Thus, a gas handling system is needed to control the flow and remove CO2 and H2O from the gas supply. Here we present the first example of an integrated Li-air battery with in-line gas handling, that allows control over the flow and composition of the gas supplied to a Li-air cell and simultaneous evaluation of the cell and scrubber performance. Our findings reveal that O-2 flow can drastically impact the capacity of cells and confirm the need for redox mediators. However, we show that current air-electrode designs translated from fuel cell technology are not suitable for Li-air cells as they result in the need for higher gas flow rates than required theoretically. This puts the scrubber under a high load and increases the requirements for solvent saturation and recapture. Our results clarify the challenges that must be addressed to realise a practical Li-air system and will provide vital insight for future modelling and cell development.
引用
收藏
页码:381 / 391
页数:11
相关论文
共 50 条
  • [31] Modelling of electrolyte degradation and cycling behaviour in a lithium-air battery
    Sahapatsombut, Ukrit
    Cheng, Hua
    Scott, Keith
    JOURNAL OF POWER SOURCES, 2013, 243 : 409 - 418
  • [32] Synthesis and Testing of a Protective Layer on the Surface of a Lithium Electrode for a Lithium-Air Battery
    Dolgopolov, S., V
    Korchagin, O., V
    Tripachev, O., V
    Bogdanovskaya, V. A.
    Andreev, V. N.
    PROTECTION OF METALS AND PHYSICAL CHEMISTRY OF SURFACES, 2021, 57 (06) : 1159 - 1164
  • [33] Development of membranes and a study of their interfaces for rechargeable lithium-air battery
    Kumar, Jitendra
    Kumar, Binod
    JOURNAL OF POWER SOURCES, 2009, 194 (02) : 1113 - 1119
  • [34] Flexible Lithium-Air Battery in Ambient Air with an InSitu Formed Gel Electrolyte
    Lei, Xiaofeng
    Liu, Xizheng
    Ma, Wenqing
    Cao, Zhen
    Wang, Yonggang
    Ding, Yi
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2018, 57 (49) : 16131 - 16135
  • [35] Ambient Air Operation Rechargeable Lithium-Air Battery with Acetic Acid Catholyte
    Soga, Shuhei
    Bai, Fan
    Zhang, Tao
    Kakimoto, Kouichi
    Mori, Daisuke
    Taminato, Sou
    Takeda, Yasuo
    Yamamoto, Osamu
    Imanishi, Nobuyuki
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2020, 167 (09)
  • [36] Thermal restacking of graphene structure to improve lithium-air battery cyclability
    Kim, Jangwoo
    Carlin, Joseph M.
    Smith, Soshana A.
    Yin, Jun
    Joo, Yong Lak
    ELECTROCHEMISTRY COMMUNICATIONS, 2016, 70 : 43 - 46
  • [37] Lithium-air batteries
    不详
    PRZEMYSL CHEMICZNY, 2020, 99 (12): : 1700 - 1700
  • [38] Application of RGO/CNT nanocomposite as cathode material in lithium-air battery
    Salehi, Masoumeh
    Shariatinia, Zahra
    Sadeghi, Abbas
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2019, 832 : 165 - 173
  • [39] Modeling of the lithium-air battery cathodes with broad pore size distribution
    Sergeev, Artem V.
    Chertovich, Alexander V.
    Itkis, Daniil M.
    CHEMICAL PHYSICS LETTERS, 2016, 660 : 149 - 154
  • [40] A Liquid Anode of Lithium Biphenyl for Highly Safe Lithium-Air Battery with Hybrid Electrolyte
    Bao, Jiejun
    Li, Chao
    Zhang, Fan
    Wang, Pengfei
    Zhang, Xueping
    He, Ping
    Zhou, Haoshen
    BATTERIES & SUPERCAPS, 2020, 3 (08) : 708 - 712