Transition Metal Dissolution, Ion Migration, Electrocatalytic Reduction and Capacity Loss in Lithium-Ion Full Cells

被引:407
作者
Gilbert, James A. [1 ]
Shkrob, Ilya A. [1 ]
Abraham, Daniel P. [1 ]
机构
[1] Argonne Natl Lab, Chem Sci & Engn Div, 9700 S Cass Ave, Argonne, IL 60439 USA
关键词
SOLID-ELECTROLYTE-INTERFACE; DIFFERENTIAL VOLTAGE ANALYSES; MOLECULAR-DYNAMICS SIMULATIONS; HIGH-POWER; CATHODE MATERIALS; GRAPHITE ANODE; CARBONATE ELECTROLYTES; DEGRADATION MECHANISMS; CURRENT COLLECTORS; AGING MECHANISMS;
D O I
10.1149/2.1111702jes
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Continuous operation of full cells with layered transition metal (TM) oxide positive electrodes (NCM523) leads to dissolution of TM ions and their migration and incorporation into the solid electrolyte interphase (SEI) of the graphite-based negative electrode. These processes correlate with cell capacity fade and accelerate markedly as the upper cutoff voltage (UCV) exceeds 4.30 V. At voltages >= 4.4 V there is enhanced fracture of the oxide during cycling that creates new surfaces and causes increased solvent oxidation and TM dissolution. Despite this deterioration, cell capacity fade still mainly results from lithium loss in the negative electrode SEI. Among TMs, Mn content in the SEI shows a better correlation with cell capacity loss than Co and Ni contents. As Mn ions become incorporated into the SEI, the kinetics of lithium trapping change from power to linear at the higher UCVs, indicating a large effect of these ions on SEI growth and implicating (electro)catalytic reactions. We estimate that each Mn-II ion deposited in the SEI causes trapping of similar to 10(2) additional Li+ ions thereby hastening the depletion of cyclable lithium ions. Using these results, we sketch a mechanism for cell capacity fade, emphasizing the conceptual picture over the chemical detail. (C) The Author(s) 2017. Published by ECS.
引用
收藏
页码:A389 / A399
页数:11
相关论文
共 79 条
[1]   Microscopy and spectroscopy of lithium nickel oxide-based particles used in high power lithium-ion cells [J].
Abraham, DP ;
Twesten, RD ;
Balasubramanian, M ;
Kropf, J ;
Fischer, D ;
McBreen, J ;
Petrov, I ;
Amine, K .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2003, 150 (11) :A1450-A1456
[2]   Surface changes on LiNi0.8Co0.2O2 particles during testing of high-power lithium-ion cells [J].
Abraham, DP ;
Twesten, RD ;
Balasubramanian, M ;
Petrov, I ;
McBreen, J ;
Amine, K .
ELECTROCHEMISTRY COMMUNICATIONS, 2002, 4 (08) :620-625
[3]   The state of understanding of the lithium-ion-battery graphite solid electrolyte interphase (SEI) and its relationship to formation cycling [J].
An, Seong Jin ;
Li, Jianlin ;
Daniel, Claus ;
Mohanty, Debasish ;
Nagpure, Shrikant ;
Wood, David L., III .
CARBON, 2016, 105 :52-76
[4]   Building better batteries [J].
Armand, M. ;
Tarascon, J. -M. .
NATURE, 2008, 451 (7179) :652-657
[5]   Failure and stabilization mechanisms of graphite electrodes [J].
Aurbach, D ;
Levi, MD ;
Levi, E ;
Schechter, A .
JOURNAL OF PHYSICAL CHEMISTRY B, 1997, 101 (12) :2195-2206
[6]  
Balbuena P.B., 2004, Lithium-Ion Batteries: Solid-Electrolyte Interphase
[7]   Voltage Fade of Layered Oxides: Its Measurement and Impact on Energy Density [J].
Bettge, Martin ;
Li, Yan ;
Gallagher, Kevin ;
Zhu, Ye ;
Wu, Qingliu ;
Lu, Wenquan ;
Bloom, Ira ;
Abraham, Daniel P. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2013, 160 (11) :A2046-A2055
[8]   Differential voltage analyses of high-power, lithium-ion cells 1. Technique and application [J].
Bloom, I ;
Jansen, AN ;
Abraham, DP ;
Knuth, J ;
Jones, SA ;
Battaglia, VS ;
Henriksen, GL .
JOURNAL OF POWER SOURCES, 2005, 139 (1-2) :295-303
[9]   Differential voltage analyses of high-power lithium-ion cells 2. Applications [J].
Bloom, I ;
Christophersen, J ;
Gering, K .
JOURNAL OF POWER SOURCES, 2005, 139 (1-2) :304-313
[10]   Differential voltage analyses of high-power lithium-ion cells - 3. Another anode phenomenon [J].
Bloom, Ira ;
Christophersen, Jon P. ;
Abraham, Daniel P. ;
Gering, Kevin L. .
JOURNAL OF POWER SOURCES, 2006, 157 (01) :537-542