Highly conducting fibrous carbon-coated silicon alloy anode for lithium ion batteries

被引:20
作者
Jang, Juyoung [1 ,2 ]
Kang, Inyeong [1 ,2 ]
Yi, Kyung-Woo [2 ,3 ]
Cho, Young Whan [1 ]
机构
[1] Korea Inst Sci & Technol, High Temp Energy Mat Res Ctr, Seoul 02792, South Korea
[2] Seoul Natl Univ, Dept Mat Sci & Engn, Seoul 08826, South Korea
[3] Seoul Natl Univ, Res Inst Adv Mat, Seoul 08826, South Korea
关键词
Silicon/iron silicide nanocomposite anode; CVD carbon coating; Initial irreversible capacity; Electrical conductivity; Lithium ion battery; SI-C NANOCOMPOSITES; HEAT-TREATMENT; RECHARGEABLE BATTERIES; POLYFURFURYL ALCOHOL; COMPOSITE ANODES; NATURAL GRAPHITE; HIGH-CAPACITY; PERFORMANCE; RAMAN; NANOFIBERS;
D O I
10.1016/j.apsusc.2018.05.165
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Carbon-coated silicon/iron silicide nanocomposite anodes developed for lithium ion rechargeable batteries present a large initial irreversible capacity owing to many pores in the carbon coating layer generated from the carbonization of polyfurfuryl alcohol (PFA) resin during the heat treatment. To overcome this issue of large initial irreversible capacity loss, we attempted to fill the pores via chemical vapor deposition (CVD) of carbon using acetylene as the source. The Brunauer-Emmett-Teller surface area is reduced from 51 to 7 m(2) g(-1) and the initial irreversible capacity also decreased from 197 mA h g(-1) corresponding to a simple resin-coated sample to 164 mA h g(-1) after CVD of carbon on the resin-derived carbon coating. The rate capability tests show an excellent ability to maintain a capacity of 500 mA h g(-1) at the rate of 7 C (10.5 A g(-1)), suggesting that the carbon nanofibers (CNFs) formed by the catalytic decomposition of acetylene on iron silicide grains aid in improving the electrical connection between the active anode particles during cycling.
引用
收藏
页码:277 / 283
页数:7
相关论文
共 67 条
[1]   Building better batteries [J].
Armand, M. ;
Tarascon, J. -M. .
NATURE, 2008, 451 (7179) :652-657
[2]   Studies on preparation and applications of polymeric precursor-based activated hard carbons: I. Activation mechanism and microstructure analyses [J].
Baek, Jin ;
Lee, Hye-Min ;
Roh, Jae-Seung ;
Lee, Hae-Seong ;
Kang, Hong Seok ;
Kim, Byung-Joo .
MICROPOROUS AND MESOPOROUS MATERIALS, 2016, 219 :258-264
[3]   Electrochemical performance of nanocomposite LiMnPO4/C cathode materials for lithium batteries [J].
Bakenov, Zhumabay ;
Taniguchi, Izumi .
ELECTROCHEMISTRY COMMUNICATIONS, 2010, 12 (01) :75-78
[4]   Nanomaterials for rechargeable lithium batteries [J].
Bruce, Peter G. ;
Scrosati, Bruno ;
Tarascon, Jean-Marie .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2008, 47 (16) :2930-2946
[5]   Reduction of the irreversible capacity in hard-carbon anode materials prepared from sucrose for Li-ion batteries [J].
Buiel, E ;
Dahn, JR .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1998, 145 (06) :1977-1981
[6]   Li-insertion in hard carbon anode materials for Li-ion batteries. [J].
Buiel, E ;
Dahn, JR .
ELECTROCHIMICA ACTA, 1999, 45 (1-2) :121-130
[7]   On the reduction of lithium insertion capacity in hard-carbon anode materials with increasing heat-treatment temperature [J].
Buiel, E ;
George, AE ;
Dahn, JR .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1998, 145 (07) :2252-2257
[8]   Genesis of porosity in polyfurfuryl alcohol derived nanoporous carbon [J].
Burket, Christopher L. ;
Rajagopalan, Ramakrishnan ;
Marencic, Andrew P. ;
Dronvajjala, Krishna ;
Foley, Henry C. .
CARBON, 2006, 44 (14) :2957-2963
[9]   Green Synthesis and Stable Li-Storage Performance of FeSi2/Si@C Nanocomposite for Lithium-Ion Batteries [J].
Chen, Yao ;
Qian, Jiangfeng ;
Cao, Yuliang ;
Yang, Hanxi ;
Ai, Xinping .
ACS APPLIED MATERIALS & INTERFACES, 2012, 4 (07) :3753-3758
[10]   Evolution of sp2 bonding with deposition temperature in tetrahedral amorphous carbon studied by Raman spectroscopy [J].
Chhowalla, M ;
Ferrari, AC ;
Robertson, J ;
Amaratunga, GAJ .
APPLIED PHYSICS LETTERS, 2000, 76 (11) :1419-1421