4.8 Article

Butterfly Effect in CuO/Graphene Composite Nanosheets: A Small Interfacial Adjustment Triggers Big Changes in Electronic Structure and Li-Ion Storage Performance

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 6, 期 19, 页码 17236-17244

出版社

AMER CHEMICAL SOC
DOI: 10.1021/am505186a

关键词

interfacial interaction; graphene; CuO; Cu2O; lithium-ion battery; NEXAFS

资金

  1. National Natural Science Foundation of China [51202009, 51272019]
  2. New Teachers' Fund for Doctor Stations, Ministry of Education of China [20120010120004]
  3. Foundation of Excellent Doctoral Dissertation of Beijing City [YB20121001001]
  4. Russian foundation for Basic Research [13-03-90920, 14-03-91057]
  5. bilateral Program Russian-German Laboratory at BESSY

向作者/读者索取更多资源

Generally speaking, excellent electrochemical performance of metal oxide/graphene nanosheets (GNSs) composite is attributed to the interfacial interaction (or synergistic effect) between constituents. However, there are no any direct observations on how the electronic structure is changed and how the properties of Li-ion storage are affected by adjusting the interfacial interaction, despite of limited investigations on the possible nature of binding between GNSs and metal oxide. In this paper, CuO nanosheets/GNSs composites with a little Cu2O (ca. 4 wt %) were utilized as an interesting model to illustrate directly the changes of interfacial nature as well as its deep influence on the electronic structure and Li-ion storage performance of composite. The interfacial adjustment was successfully fulfilled by removal of Cu2O in the composite by NH3 center dot H2O. Formation of Cu-O-C bonds on interfaces both between CuO and GNSs, and Cu2O and GNSs in the original CuO/GNSs composites was detected. The small interfacial alteration by removal of the little Cu2O results in the obvious changes in electronic structure, such as weakening of covalent Cu-O-C interfacial interaction and recovery of p bonds in graphene, and simultaneously leads to variations in electrochemical performance of composites, including a 21% increase of reversible capacity, degradation of cyclic stability and rate-performance, and obvious increase of charge-transfer resistance, which can be called a butterfly effect in graphene-based metal oxide composites. These interesting phenomena could be helpful to design not only the high-performance graphene/metal oxide anode materials but also various advanced graphene-based composites used in the other fields such as sensors, catalysis, fuel cells, solar cells, etc.

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