Graphene anchored with nickel nanoparticles as a high-performance anode material for lithium ion batteries

被引:120
作者
Mai, Y. J.
Tu, J. P. [1 ]
Gu, C. D.
Wang, X. L.
机构
[1] Zhejiang Univ, State Key Lab Silicon Mat, Hangzhou 310027, Peoples R China
关键词
Graphene; Nickel nanoparticles; Anode; Lithium ion battery; ELECTROCHEMICAL IMPEDANCE; SURFACE MODIFICATION; REVERSIBLE CAPACITY; LI STORAGE; GRAPHITE; COMPOSITE; INSERTION; ELECTRODE; FILMS;
D O I
10.1016/j.jpowsour.2012.02.073
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
The surface of graphene is modified by nickel nanoparticles which are in-situ reduced from NiO nanopartidies by graphene. The nickel nanoparticles obtained are up to 10 nm in size and are strongly anchored on the surface of graphene sheets. As an anode material for lithium ion batteries, the graphene-Ni hybrid material delivers a reversible capacity of 675 mAh g(-1) after 35 discharge/charge cycles at a current density of 100 mA g(-1), corresponding to 85% retention of the initial charge capacity. In addition, the graphene-Ni hybrid electrode exhibits much better rate capability compared to its pure counterpart operated at various rates between 200 and 800 mA g(-1). Such enhanced lithium storage performance of the graphene-Ni hybrid electrode can be ascribed to the enhanced electronic transport and Li+ migration through the solid electrolyte interphase (SEI) film as a consequence of that the anchored nickel nanoparticles increase the electronic conductivity and modify the structure of SEI film covering the surface of graphene. (C) 2012 Elsevier B.V. All rights reserved.
引用
收藏
页码:1 / 6
页数:6
相关论文
共 46 条
[11]   Highly reversible Co3O4/graphene hybrid anode for lithium rechargeable batteries [J].
Kim, Haegyeom ;
Seo, Dong-Hwa ;
Kim, Sung-Wook ;
Kim, Jongsoon ;
Kang, Kisuk .
CARBON, 2011, 49 (01) :326-332
[12]   Alkali carbonate-coated graphite electrode for lithium-ion batteries [J].
Komaba, S. ;
Watanabe, M. ;
Groult, H. ;
Kumagai, N. .
CARBON, 2008, 46 (09) :1184-1193
[13]   Enhancement of rate capability in graphite anode by surface modification with zirconia [J].
Kottegoda, IRM ;
Kadoma, Y ;
Ikuta, H ;
Uchimoto, Y ;
Wakihara, M .
ELECTROCHEMICAL AND SOLID STATE LETTERS, 2002, 5 (12) :A275-A278
[14]   Mesoporous polyaniline/TiO2 microspheres with core-shell structure as anode materials for lithium ion battery [J].
Lai, C. ;
Zhang, H. Z. ;
Li, G. R. ;
Gao, X. P. .
JOURNAL OF POWER SOURCES, 2011, 196 (10) :4735-4740
[15]   Diffusion coefficients of lithium ions during intercalation into graphite derived from the simultaneous measurements and modeling of electrochemical impedance and potentiostatic intermittent titration characteristics of thin graphite electrodes [J].
Levi, MD ;
Aurbach, D .
JOURNAL OF PHYSICAL CHEMISTRY B, 1997, 101 (23) :4641-4647
[16]   Simultaneous measurements and modeling of the electrochemical impedance and the cyclic voltammetric characteristics of graphite electrodes doped with lithium [J].
Levi, MD ;
Aurbach, D .
JOURNAL OF PHYSICAL CHEMISTRY B, 1997, 101 (23) :4630-4640
[17]   Large reversible capacity of high quality graphene sheets as an anode material for lithium-ion batteries [J].
Lian, Peichao ;
Zhu, Xuefeng ;
Liang, Shuzhao ;
Li, Zhong ;
Yang, Weishen ;
Wang, Haihui .
ELECTROCHIMICA ACTA, 2010, 55 (12) :3909-3914
[18]   Graphene-based electrode materials for rechargeable lithium batteries [J].
Liang, Minghui ;
Zhi, Linjie .
JOURNAL OF MATERIALS CHEMISTRY, 2009, 19 (33) :5871-5878
[19]   Engineering nanostructured electrodes and fabrication of film electrodes for efficient lithium ion intercalation [J].
Liu, Dawei ;
Cao, Guozhong .
ENERGY & ENVIRONMENTAL SCIENCE, 2010, 3 (09) :1218-1237
[20]   Mechanism of lithium insertion in hard carbons prepared by pyrolysis of epoxy resins [J].
Liu, YH ;
Xue, JS ;
Zheng, T ;
Dahn, JR .
CARBON, 1996, 34 (02) :193-200