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Integrated Surface Modulation of Ultrahigh Ni Cathode Materials for Improved Battery Performance. | LitMetric

Integrated Surface Modulation of Ultrahigh Ni Cathode Materials for Improved Battery Performance.

Small Methods

CAS Key Laboratory of Molecular Nanostructure and Nanotechnology, and Beijing National Laboratory for Molecular Sciences (BNLMS), Institute of Chemistry, Chinese Academy of Sciences (CAS), Beijing, 100190, P. R. China.

Published: July 2023

AI Article Synopsis

  • Ni-rich layered cathodes with high nickel content (≥90%) show promise for high-energy Li-ion batteries but struggle with stability during use due to structural degradation and side reactions.
  • Researchers have developed a method to stabilize these cathodes through a combination of a Li-conductive nanocoating and gradient lattice doping that enhances their durability over extended cycles.
  • The study demonstrates that this innovative surface modulation leads to a remarkable 96.6% capacity retention after 100 cycles and an impressive rate capability, showcasing its significance for future battery technologies.

Article Abstract

Ni-rich layered cathodes with ultrahigh nickel content (≥90%), for example LiNi Co O (NC0.9), are promising for next-generation high-energy Li-ion batteries (LIBs), but face stability issues related to structural degradation and side reactions during the electrochemical process. Here, surface modulation is demonstrated by integrating a Li -conductive nanocoating and gradient lattice doping to stabilize the active cathode efficiently for extended cycles. Briefly, a wet-chemistry process is developed to deposit uniform ZrO(OH) nanoshells around Ni Co (OH) (NC0.9-OH) hydroxide precursors, followed by high temperature lithiation to create reinforced products featuring Zr doping in the crust lattice decorated with Li ZrO nanoparticles on the surface. It is identified that the Zr infiltration reconstructed the surface lattice into favorable characters such as Li deficiency and Ni reduction, which are effective to combat side reactions and suppress phase degradation and crack formation. This surface control is able to achieve an optimized balance between surface stabilization and charge transfer, resulting in an extraordinary capacity retention of 96.6% after 100 cycles at 1 C and an excellent rate capability of 148.8 mA h g at 10 C. This study highlights the critical importance of integrated surface modulation for high stability of cathode materials in next-generation LIBs.

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Source
http://dx.doi.org/10.1002/smtd.202300280DOI Listing

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