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  • Optimizing O3-type cathode materials for sodium-ion batteries . . .
    In this study, we systematically explored the influence of precursor particle size and morphology on the microstructure and electrochemical performance of sodium-ion battery cathode materials We unveiled insightful correlations by synthesizing a series of secondary spherical sodium-ion battery cathode materials with varying sizes and internal
  • Fast-charge high-voltage layered cathodes for sodium-ion . . .
    You, Y et al Insights into the improved high-voltage performance of Li-incorporated layered oxide cathodes for sodium-ion batteries Chem 4 , 2124–2139 (2018) Article CAS Google Scholar
  • Prussian Blue Analogues for Sodium‐Ion Battery Cathodes: A . . .
    To surmount these obstacles and fully harness the potential of PBAs in sodium-ion batteries, ongoing innovation and refinement of synthesis methods are essential Efforts to optimize these novel approaches will be crucial for achieving enhanced electrochemical performance and for the practical commercialization of PBAs
  • O3‐Type Cathodes for Sodium‐Ion Batteries: Recent . . .
    It is noteworthy that, by incorporating a small amount of Li, the O3 cathode surpassed the energy density of LiCoO 2 (560 Wh kg −1) and LiFePO 4 (560 Wh kg −1), reaching 675 Wh kg −1, which remained high at 430 Wh kg −1 even in a full-cell SIB, making it the highest-performing sodium-ion battery reported to date 230-232
  • Routes to high-performance layered oxide cathodes for sodium . . .
    Sodium-ion batteries (SIBs) are experiencing a large-scale renaissance to supplement or replace expensive lithium-ion batteries (LIBs) and low energy density lead-acid batteries in electrical energy storage systems and other applications In this case, layered oxide materials have become one of the most popu
  • Manipulating Local Chemistry and Coherent . . . - ACS Publications
    Layered sodium transition-metal (TM) oxides generally suffer from severe capacity decay and poor rate performance during cycling, especially at a high state of charge (SoC) Herein, an insight into failure mechanisms within high-voltage layered cathodes is unveiled, while a two-in-one tactic of charge localization and coherent structures is devised to improve structural integrity and Na+
  • Optimizing O3-type cathode materials for sodium-ion batteries . . .
    This work offers valuable insights in energy-density cathode materials in sodium ion batteries AB - Utilization of secondary spherical structures derived from metal hydroxides as precursor materials is one of the most promising approaches in terms of energy density and industrial viability for sodium-ion batteries





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