4.8 Article

Manganese Oxide/Carbon Yolk-Shell Nanorod Anodes for High Capacity Lithium Batteries

期刊

NANO LETTERS
卷 15, 期 1, 页码 738-744

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nl504427d

关键词

Yolk-shell nanorod; manganese oxide; long-life; volume change anode material

资金

  1. National Natural Basic Research Program of China [2013CB934103, 2012CB933003]
  2. National Science Fund for Distinguished Young Scholars [51425204]
  3. International Science and Technology Cooperation Program of China [2013DFA50840]
  4. National Natural Science Foundation of China [51272197, 51302203]
  5. Hubei Science Fund for Distinguished Young Scholars [2014CFA035]
  6. Fundamental Research Funds for the Central Universities [2013-ZD-7, 2014-yb-002]
  7. Students Innovation and Entrepreneurship Training Program [136601001, 20131049701002]

向作者/读者索取更多资源

Transition metal oxides have attracted much interest for their high energy density in lithium batteries. However, the fast capacity fading and the low power density still limit their practical implementation. In order to overcome these challenges, one-dimensional yolkshell nanorods have been successfully constructed using manganese oxide as an example through a facile two-step solgel coating method. Dopamine and tetraethoxysilane are used as precursors to obtain uniform polymer coating and silica layer followed by converting into carbon shell and hollow space, respectively. As anode material for lithium batteries, the manganese oxide/carbon yolkshell nanorod electrode has a reversible capacity of 660 mAh/g for initial cycle at 100 mA/g and exhibits excellent cyclability with a capacity of 634 mAh/g after 900 cycles at a current density of 500 mA/g. An enhanced capacity is observed during the long-term cycling process, which may be attributed to the structural integrity, the stability of solid electrolyte interphase layer, and the electrochemical actuation of the yolkshell nanorod structure. The results demonstrate that the manganese oxide is well utilized with the one-dimensional yolkshell structure, which represents an efficient way to realize excellent performance for practical applications.

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