Microstructural Analysis of the Effects of Thermal Runaway on Li-Ion and Na-Ion Battery Electrodes

被引:58
作者
Robinson, James B. [1 ]
Finegan, Donal P. [1 ,2 ]
Heenan, Thomas M. M. [1 ]
Smith, Katherine [3 ]
Kendrick, Emma [1 ,3 ,4 ]
Brett, Daniel J. L. [1 ]
Shearing, Paul R. [1 ]
机构
[1] UCL, Dept Chem Engn, Electrochem Innovat Lab, London WC1E 7JE, England
[2] Natl Renewable Energy Lab, 15013 Denver West Pkwy, Golden, CO 80401 USA
[3] Sharp Labs Europe, Oxford Sci Pk,Edmund Halley Rd, Oxford OX4 4GB, Oxon, England
[4] Univ Warwick, Warwick Mfg Grp, Univ Rd, Coventry CV4 7AL, W Midlands, England
基金
英国工程与自然科学研究理事会;
关键词
HIGH-CAPACITY; CATHODE MATERIALS; AGING MECHANISMS; AIR BATTERIES; SODIUM; MANAGEMENT; STABILITY; ISSUES; TOMOGRAPHY; CHALLENGES;
D O I
10.1115/1.4038518
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Thermal runaway is a phenomenon that occurs due to self-sustaining reactions within batteries at elevated temperatures resulting in catastrophic failure. Here, the thermal runaway process is studied for a Li-ion and Na-ion pouch cells of similar energy density (10.5 Wh, 12 Wh, respectively) using accelerating rate calorimetry (ARC). Both cells were constructed with a z-fold configuration, with a standard shutdown separator in the Li-ion and a low-cost polypropylene (PP) separator in the Na-ion. Even with the shut-down separator, it is shown that the self-heating rate and rate of thermal runaway in Na-ion cells is significantly slower than that observed in Li-ion systems. The thermal runaway event initiates at a higher temperature in Na-ion cells. The effect of thermal runaway on the architecture of the cells is examined using X-ray microcomputed tomography, and scanning electron microscopy (SEM) is used to examine the failed electrodes of both cells. Finally, from examination of the respective electrodes, likely due to the carbonate solvent containing electrolyte, it is suggested that thermal runaway in Na-ion batteries (NIBs) occurs via a similar mechanism to that reported for Li-ion cells.
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页数:9
相关论文
共 48 条
[1]  
AAIB, 2015, EWC20130701 AAIB ETH
[2]   In operando monitoring of the state of charge and species distribution in zinc air batteries using X-ray tomography and model-based simulations [J].
Arlt, Tobias ;
Schroeder, Daniel ;
Krewer, Ulrike ;
Manke, Ingo .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2014, 16 (40) :22273-22280
[3]   Building better batteries [J].
Armand, M. ;
Tarascon, J. -M. .
NATURE, 2008, 451 (7179) :652-657
[4]   A Critical Review of Thermal Issues in Lithium-Ion Batteries [J].
Bandhauer, Todd M. ;
Garimella, Srinivas ;
Fuller, Thomas F. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2011, 158 (03) :R1-R25
[5]  
Beauregard G.P., 2008, REPORT INVESTIGATION
[6]   Main aging mechanisms in Li ion batteries [J].
Broussely, M ;
Biensan, P ;
Bonhomme, F ;
Blanchard, P ;
Herreyre, S ;
Nechev, K ;
Staniewicz, RJ .
JOURNAL OF POWER SOURCES, 2005, 146 (1-2) :90-96
[7]   Multi-scale study of thermal stability of lithiated graphite [J].
Chen, Zonghai ;
Qin, Yan ;
Ren, Yang ;
Lu, Wenquan ;
Orendorff, Christopher ;
Roth, E. Peter ;
Amine, Khalil .
ENERGY & ENVIRONMENTAL SCIENCE, 2011, 4 (10) :4023-4030
[8]   Lithiation- Induced Dilation Mapping in a Lithium- Ion Battery Electrode by 3D X- Ray Microscopy and Digital Volume Correlation [J].
Eastwood, David S. ;
Yufit, Vladimir ;
Gelb, Jeff ;
Gu, Allen ;
Bradley, Robert S. ;
Harris, Stephen J. ;
Brett, Daniel J. L. ;
Brandon, Nigel P. ;
Lee, Peter D. ;
Withers, Philip J. ;
Shearing, Paul R. .
ADVANCED ENERGY MATERIALS, 2014, 4 (04)
[9]   Sodium and sodium-ion energy storage batteries [J].
Ellis, Brian L. ;
Nazar, Linda F. .
CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 2012, 16 (04) :168-177
[10]   Crystal Structure and Electrochemical Properties of A2MPO4F Fluorophosphates (A = Na, Li; M = Fe, Mn, Co, Ni) [J].
Ellis, Brian L. ;
Makahnouk, W. R. Michael ;
Rowan-Weetaluktuk, W. N. ;
Ryan, D. H. ;
Nazar, Linda F. .
CHEMISTRY OF MATERIALS, 2010, 22 (03) :1059-1070