Identifying Capacity Limitations in the Li/Oxygen Battery Using Experiments and Modeling

被引:264
作者
Albertus, Paul [1 ]
Girishkumar, G. [2 ]
McCloskey, Bryan [2 ]
Sanchez-Carrera, Roel S. [3 ]
Kozinsky, Boris [3 ]
Christensen, Jake [1 ]
Luntz, A. C. [2 ]
机构
[1] Robert Bosch Res & Technol Ctr, Palo Alto, CA 94304 USA
[2] IBM Almaden Res Ctr, San Jose, CA 95120 USA
[3] Robert Bosch Res & Technol Ctr, Cambridge, MA 02142 USA
关键词
AIR BATTERY; LITHIUM; ELECTROLYTES; OPTIMIZATION; CARBONATE; DISCHARGE; CHARGE; O-2;
D O I
10.1149/1.3527055
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The Li/oxygen battery may achieve a high practical specific energy as its theoretical specific energy is 11,400 Wh/kg Li assuming Li2O2 is the product. To help understand the physics of the Li/oxygen battery we present the first physics-based model that incorporates the major thermodynamic, transport, and kinetic processes. We obtain a good match between porous-electrode experiments and simulations by using an empirical fit to the resistance of the discharge products (which include carbonates and oxides when using carbonate solvents) as a function of thickness that is obtained from flat-electrode experiments. The experiments and model indicate that the discharge products are electronically resistive, limiting their thickness to tens of nanometers and their volume fraction in one of our discharged porous electrodes to a few percent. Flat-electrode experiments, where pore clogging is impossible, show passivation similar to porous-electrode experiments and allow us to conclude that electrical passivation is the dominant capacity-limiting mechanism in our cells. Although in carbonate solvents Li2O2 is not the dominant discharge product, we argue that the implications of this model, (i.e., electrical passivation by the discharge products limits the capacity) also apply if Li2O2 is the discharge product, as it is an intrinsic electronic insulator. (C) 2011 The Electrochemical Society. [DOI:10.1149/1.3527055] All rights reserved.
引用
收藏
页码:A343 / A351
页数:9
相关论文
共 43 条
  • [1] A polymer electrolyte-based rechargeable lithium/oxygen battery
    Abraham, KM
    Jiang, Z
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1996, 143 (01) : 1 - 5
  • [2] Modeling side reactions and nonisothermal effects in nickel metal-hydride batteries
    Albertus, Paul
    Christensen, John
    Newman, John
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2008, 155 (01) : A48 - A60
  • [3] Experiments on and Modeling of Positive Electrodes with Multiple Active Materials for Lithium-Ion Batteries
    Albertus, Paul
    Christensen, Jake
    Newman, John
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2009, 156 (07) : A606 - A618
  • [4] High-Capacity Lithium-Air Cathodes
    Beattie, S. D.
    Manolescu, D. M.
    Blair, S. L.
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2009, 156 (01) : A44 - A47
  • [5] PROJECTOR AUGMENTED-WAVE METHOD
    BLOCHL, PE
    [J]. PHYSICAL REVIEW B, 1994, 50 (24): : 17953 - 17979
  • [6] 7Li and 19F diffusion coefficients and thermal properties of non-aqueous electrolyte solutions for rechargeable lithium batteries
    Capiglia, C
    Saito, Y
    Kageyama, H
    Mustarelli, P
    Iwamoto, T
    Tabuchi, T
    Tukamoto, H
    [J]. JOURNAL OF POWER SOURCES, 1999, 81 : 859 - 862
  • [7] Chase M.W., 1998, J. of Physical and Chemical Reference Data, DOI 10.18434/T42S31
  • [8] An O2 cathode for rechargeable lithium batteries:: The effect of a catalyst
    Debart, Aurelie
    Bao, Jianli
    Armstrong, Graham
    Bruce, Peter G.
    [J]. JOURNAL OF POWER SOURCES, 2007, 174 (02) : 1177 - 1182
  • [9] Computer simulations of the impedance response of lithium rechargeable batteries
    Doyle, M
    Meyers, JP
    Newman, J
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2000, 147 (01) : 99 - 110
  • [10] MODELING OF GALVANOSTATIC CHARGE AND DISCHARGE OF THE LITHIUM POLYMER INSERTION CELL
    DOYLE, M
    FULLER, TF
    NEWMAN, J
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1993, 140 (06) : 1526 - 1533