4.8 Article

Template-Engaged Synthesis of 1D Hierarchical Chainlike LiCoO2 Cathode Materials with Enhanced High-Voltage Lithium Storage Capabilities

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 8, Issue 38, Pages 25361-25368

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.6b09159

Keywords

LiCoO2; chainlike morphology; hierarchical structure; cathode material; lithium-ion batteries

Funding

  1. National Natural Science Foundation of China [31502180]
  2. National Basic Research Program of China (973 program) [2013CB934700]
  3. Foundation for the Author of National Excellent Doctor Dissertation of P. R. China [FANEDD201435]
  4. Fundamental Research Funds for the Central Universities [2016SCU04A18]

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A novel 1D hierarchical chainlike LiCoO2 organized by flake-shaped primary particles is synthesized via a facile template-engaged strategy by using CoC2O4 center dot 2H2O as a self-sacrificial template obtained from a simple coprecipitation method. The resultant LiCoO2 has a well-built hierarchical structure, consisting of secondary micrometer-sized chains and sub-micrometer-sized primary flakes, while these primary LiCoO2 flakes have specifically exposed fast-Li+-diffused active {010} facets. Owing to this unique hierarchical structure, the chainlike LiCoO2 serves as a stable cathode material for lithium-ion batteries (LIBs) operated at a high cutoff voltage up to 4.5 V, enabling highly reversible capacity, remarkable rate performance, and long-term cycle life. Specifically, the chainlike LiCoO2 can deliver a reversible discharge capacity as high as 168, 156, 150, and 120 mAh g1 under the current density of 0.1, 0.5, 1, and 5 degrees C, respectively, while about 85% retention of the initial capacity can be retained after 200 cycles under 1 C at room temperature. Moreover, the chainlike LiCoO2 also shows an excellent cycling stability at a wide operating temperature range, showing the capacity retention of similar to 73% after 200 cycles at 55 degrees C and of similar to 68% after 50 cycles at -10 degrees C, respectively. The work described here suggests the great potential of the hierarchical chainlike LiCoO2 as high-voltage cathode materials aimed toward developing advanced LIBs with high energy density and power density.

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