Toward Low-Cost, High-Energy Density, and High-Power Density Lithium-Ion Batteries

被引:259
作者
Li, Jianlin [1 ,2 ]
Du, Zhijia [1 ]
Ruther, Rose E. [1 ]
An, Seong Jin [1 ,2 ]
David, Lamuel Abraham [1 ]
Hays, Kevin [1 ]
Wood, Marissa [1 ]
Phillip, Nathan D. [1 ,2 ]
Sheng, Yangping [1 ]
Mao, Chengyu [1 ]
Kalnaus, Sergiy [3 ]
Daniel, Claus [1 ,2 ]
Wood, David L., III [1 ,2 ]
机构
[1] Oak Ridge Natl Lab, Energy & Transportat Sci Div, One Bethel Valley Rd,POB 2008, Oak Ridge, TN 37831 USA
[2] Univ Tennessee, Bredesen Ctr Interdisciplinary Res & Grad Educ, 418 Greve Hall,821 Volunteer Blvd, Knoxville, TN 37996 USA
[3] Oak Ridge Natl Lab, Comp Sci & Math Div, One Bethel Valley Rd,POB 2008, Oak Ridge, TN 37831 USA
关键词
SOLID-ELECTROLYTE INTERPHASE; FLUOROETHYLENE CARBONATE FEC; X-RAY-DIFFRACTION; LI-ION; CATHODE MATERIAL; HIGH-CAPACITY; ELECTROCHEMICAL PERFORMANCE; CONCENTRATION-GRADIENT; VOLTAGE-FADE; CYCLING STABILITY;
D O I
10.1007/s11837-017-2404-9
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Reducing cost and increasing energy density are two barriers for widespread application of lithium-ion batteries in electric vehicles. Although the cost of electric vehicle batteries has been reduced by similar to 70% from 2008 to 2015, the current battery pack cost ($268/kWh in 2015) is still >2 times what the USABC targets ($125/kWh). Even though many advancements in cell chemistry have been realized since the lithium-ion battery was first commercialized in 1991, few major breakthroughs have occurred in the past decade. Therefore, future cost reduction will rely on cell manufacturing and broader market acceptance. This article discusses three major aspects for cost reduction: (1) quality control to minimize scrap rate in cell manufacturing; (2) novel electrode processing and engineering to reduce processing cost and increase energy density and throughputs; and (3) material development and optimization for lithium-ion batteries with high-energy density. Insights on increasing energy and power densities of lithium-ion batteries are also addressed.
引用
收藏
页码:1484 / 1496
页数:13
相关论文
共 165 条
[1]   Fast formation cycling for lithium ion batteries [J].
An, Seong Jin ;
Li, Jianlin ;
Du, Zhijia ;
Daniel, Claus ;
Wood, David L., III .
JOURNAL OF POWER SOURCES, 2017, 342 :846-852
[2]   Long-Term Lithium-Ion Battery Performance Improvement via Ultraviolet Light Treatment of the Graphite Anode [J].
An, Seong Jin ;
Li, Jianlin ;
Sheng, Yangping ;
Daniel, Claus ;
Wood, David L., III .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2016, 163 (14) :A2866-A2875
[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]   Future generations of cathode materials: an automotive industry perspective [J].
Andre, Dave ;
Kim, Sung-Jin ;
Lamp, Peter ;
Lux, Simon Franz ;
Maglia, Filippo ;
Paschos, Odysseas ;
Stiaszny, Barbara .
JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (13) :6709-6732
[5]  
[Anonymous], USABC GOALS ADV BATT
[6]   Design of Battery Electrodes with Dual-Scale Porosity to Minimize Tortuosity and Maximize Performance [J].
Bae, Chang-Jun ;
Erdonmez, Can K. ;
Halloran, John W. ;
Chiang, Yet-Ming .
ADVANCED MATERIALS, 2013, 25 (09) :1254-1258
[7]   Degradation mechanisms of lithium-rich nickel manganese cobalt oxide cathode thin films [J].
Baggetto, Loic ;
Mohanty, Debasish ;
Meisner, Roberta A. ;
Bridges, Craig A. ;
Daniel, Claus ;
Wood, David L., III ;
Dudney, Nancy J. ;
Veith, Gabriel M. .
RSC ADVANCES, 2014, 4 (45) :23364-23371
[8]   Will advanced lithium-alloy anodes have a chance in lithium-ion batteries? [J].
Besenhard, JO ;
Yang, J ;
Winter, M .
JOURNAL OF POWER SOURCES, 1997, 68 (01) :87-90
[9]  
Bhattacharya S., 2012, MRS P, V1388, P1
[10]   Micromechanisms of solid electrolyte interphase formation on electrochemically cycled graphite electrodes in lithium-ion cells [J].
Bhattacharya, Sandeep ;
Alpas, Ahmet T. .
CARBON, 2012, 50 (15) :5359-5371