4.8 Article

Yolk-Shell Cu2O@CuO-decorated RGO for High-Performance Lithium-Ion Battery Anode

Journal

ENERGY & ENVIRONMENTAL MATERIALS
Volume 5, Issue 1, Pages 253-260

Publisher

WILEY
DOI: 10.1002/eem2.12160

Keywords

copper oxide; Cu2O; Li-ion battery; nanocomposites; yolk-shell

Funding

  1. National Natural Science Foundation of China [U1866203, 11674263, 21805221]
  2. Postdoctoral Research Foundation of China [2019M663690, 2020M671606]
  3. National Natural Science Foundation of Shaanxi Province [2020JZ-03]
  4. Key Scientific and Technological Innovation Team of Shaanxi Province [2020TD-001]
  5. Fundamental Research Funds for the Central Universities
  6. World-Class Universities (Disciplines)
  7. Characteristic Development Guidance Funds for the Central Universities
  8. Instrument Analysis Center of Xi'an Jiaotong University

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This study presents a hierarchical yolk-shell Cu2O@CuO-decorated RGO (YSR) structure with inner hollow and solid features, which shows enhanced electronic and ionic diffusion kinetics, high specific capacity, and excellent rate capability for lithium-ion battery electrodes.
Based on the great advantages of an inner hollow structure and excellent solid counterpart capacity, complex hierarchical structures have been widely used as electrodes for lithium-ion batteries. Herein, hierarchical yolk-shell Cu2O@CuO-decorated RGO (YSRs) was designed and synthesized via a multi-step approach. Octahedron-like Cu2O-decorated RGO was firstly produced, in which GO was reduced slightly while cuprous oxide was synthesized. Subsequently, the controlled oxidation of Cu2O@RGO led to the synthesis of special YSRs, which were composed of a solid Cu2O core, spur-CuO, CuO shell, and RGO covered. As anode materials, YSRs could provide considerable capacity density. Meanwhile, the void existed between shells and solid active materials retaining the advantages of inner hollow structure. As a result, the unique architecture of the materials renders the composites with enhanced electronic and ionic diffusion kinetics, high specific capacity (similar to 894 mAh g(-1), 0.1C), and an excellent rate capability.

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