Free-Standing Copper Nanowire Network Current Collector for Improving Lithium Anode Performance

被引:647
作者
Lu, Lei -Lei [1 ]
Ge, Jin [1 ]
Yang, Jun-Nan [1 ]
Chen, Si-Ming [1 ]
Yao, Hong-Bin [1 ]
Zhou, Fei [1 ]
Yu, Shu-Hong [1 ]
机构
[1] Univ Sci & Technol China, Collaborat Innovat Ctr Suzhou Nano Sci & Technol, Hefei Natl Lab Phys Sci Microscale,Dept Chem, Div Nanomat & Chem,CAS Ctr Excellence Nanosci, 96 Jinzhai Rd, Hefei 230026, Anhui, Peoples R China
基金
中国国家自然科学基金;
关键词
Lithium metal; anode; current collector; copper nanowires; Coulombic efficiency; HIGH-ENERGY; METAL ANODE; BATTERIES; ION; POLYSULFIDE; ELECTROLYTE; DEPOSITION; MECHANISMS; LIQUID;
D O I
10.1021/acs.nanolett.6b01581
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Lithium metal is one of the most attractive anode materials for next-generation lithium batteries due to its high specific capacity and low electrochemical potential. However, the poor cycling performance and serious safety hazards, caused by the growth of dendritic and mossy lithium, has long hindered the application of lithium metal based batteries. Herein, we reported a rational design of free-standing Cu nanowire (CuNW) network to suppress the growth of dendritic lithium via accommodating the lithium metal in three-dimensional (3D) nanostructures. We demonstrated that as high as 7.5 mA h cm(-2) of lithium can be plated into the free-standing copper nanowire (CuNW) current collector without the growth of dendritic lithium. The lithium metal anode based on the CuNW exhibited high Coulombic efficiency (average 98.6% during 200 cycles) and outstanding rate performance owing to the suppression of lithium dendrite growth and high conductivity of CuNW network. Our results demonstrate that the rational nanostructural design of current collector could be a promising strategy to improve the performance of lithium metal anode enabling its application in next-generation lithium-metal based batteries.
引用
收藏
页码:4431 / 4437
页数:7
相关论文
共 36 条
[1]   A short review of failure mechanisms of lithium metal and lithiated graphite anodes in liquid electrolyte solutions [J].
Aurbach, D ;
Zinigrad, E ;
Cohen, Y ;
Teller, H .
SOLID STATE IONICS, 2002, 148 (3-4) :405-416
[2]   Attempts to improve the behavior of Li electrodes in rechargeable lithium batteries [J].
Aurbach, D ;
Zinigrad, E ;
Teller, H ;
Cohen, Y ;
Salitra, G ;
Yamin, H ;
Dan, P ;
Elster, E .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2002, 149 (10) :A1267-A1277
[3]  
Bruce PG, 2012, NAT MATER, V11, P19, DOI [10.1038/nmat3191, 10.1038/NMAT3191]
[4]  
Chandrashekar S, 2012, NAT MATER, V11, P311, DOI [10.1038/NMAT3246, 10.1038/nmat3246]
[5]   Dual-Phase Lithium Metal Anode Containing a Polysulfide-Induced Solid Electrolyte Interphase and Nanostructured Graphene Framework for Lithium-Sulfur Batteries [J].
Cheng, Xin-Bing ;
Peng, Hong-Jie ;
Huang, Jia-Qi ;
Zhang, Rui ;
Zhao, Chen-Zi ;
Zhang, Qiang .
ACS NANO, 2015, 9 (06) :6373-6382
[6]   Dendrite-Free Lithium Deposition via Self-Healing Electrostatic Shield Mechanism [J].
Ding, Fei ;
Xu, Wu ;
Graff, Gordon L. ;
Zhang, Jian ;
Sushko, Maria L. ;
Chen, Xilin ;
Shao, Yuyan ;
Engelhard, Mark H. ;
Nie, Zimin ;
Xiao, Jie ;
Liu, Xingjiang ;
Sushko, Peter V. ;
Liu, Jun ;
Zhang, Ji-Guang .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2013, 135 (11) :4450-4456
[7]   Carbon materials for lithium-ion rechargeable batteries [J].
Flandrois, S ;
Simon, B .
CARBON, 1999, 37 (02) :165-180
[8]   Lithium metal stripping/plating mechanisms studies: A metallurgical approach [J].
Gireaud, L. ;
Grugeon, S. ;
Laruelle, S. ;
Yrieix, B. ;
Tarascon, J. -M. .
ELECTROCHEMISTRY COMMUNICATIONS, 2006, 8 (10) :1639-1649
[9]   The Li-Ion Rechargeable Battery: A Perspective [J].
Goodenough, John B. ;
Park, Kyu-Sung .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2013, 135 (04) :1167-1176
[10]   Vinylene carbonate-LiNO3: A hybrid additive in carbonic ester electrolytes for SEI modification on Li metal anode [J].
Guo, Jing ;
Wen, Zhaoyin ;
Wu, Meifen ;
Jin, Jun ;
Liu, Yu .
ELECTROCHEMISTRY COMMUNICATIONS, 2015, 51 :59-63