4.7 Article

Multi-Role Surface Modification of Single-Crystalline Nickel-Rich Lithium Nickel Cobalt Manganese Oxides Cathodes with WO3 to Improve Performance for Lithium-Ion Batteries

Journal

NANOMATERIALS
Volume 12, Issue 8, Pages -

Publisher

MDPI
DOI: 10.3390/nano12081324

Keywords

nickel-rich NCM; single-crystalline; surface modification; WO3

Funding

  1. National Natural Science Foundation of China [61264006]
  2. Natural Science Foundation of Guangxi Province [2013GXNSFGA019007]
  3. Innovation-Driven Development Foundation of Guangxi Province [AA17204063]
  4. science and technology plan project of Chongzuo [FA2019001]

Ask authors/readers for more resources

Compared with the polycrystalline system, the single-crystalline ternary cathode material has better cycle stability. In this study, a simple method of adding and calcination was used to investigate the surface modification of the single-crystalline nickel-rich ternary cathode material, and it was found that both doping and coating can enhance the structural stability and cycling performance, with the single coating showing the best effect.
Compared with the polycrystalline system, the single-crystalline ternary cathode material has better cycle stability because the only primary particles without grain boundaries effectively alleviate the formation of micro/nanocracks and retain better structural integrity. Therefore, it has received extensive research attention. There is no consistent result whether tungsten oxide acts as doping and/or coating from the surface modification of the polycrystalline system. Meanwhile, there is no report on the surface modification of the single-crystalline system by tungsten oxide. In this paper, multirole surface modification of single-crystalline nickel-rich ternary cathode material LiNi0.6Co0.2Mn0.2O2 by WO3 is studied by a simple method of adding WO3 followed by calcination. The results show that with the change in the amount of WO3 added, single-crystalline nickel-rich ternary cathode material can be separately doped, separately coated, and both doped and coated. Either doping or coating effectively enhances the structural stability, reduces the polarization of the material, and improves the lithium-ion diffusion kinetics, thus improving the cycle stability and rate performance of the battery. Interestingly, both doping and coating (for SC-NCM622-0.5%WO3) do not show a more excellent synergistic effect, while the single coating (for SC-NCM622-1.0%WO3) after eliminating the rock-salt phase layer performs the most excellent modification effect.

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