AI Article Synopsis

  • * To address these challenges, researchers developed spherical MnFeO@xC nanocomposites with a MnFeO core and adjustable carbon shell thicknesses, enhancing their performance as anodes.
  • * The study found that a carbon shell thickness of 4C provided the best electrochemical performance, achieving a reversible capacity of around 308 mAh·g and excellent capacity retention after multiple cycles, outperforming other configurations.

Article Abstract

Transition metal oxides (TMOs) are important anode materials in sodium-ion batteries (SIBs) due to their high theoretical capacities, abundant resources, and cost-effectiveness. However, issues such as the low conductivity and large volume variation of TMO bulk materials during the cycling process result in poor electrochemical performance. Nanosizing and compositing with carbon materials are two effective strategies to overcome these issues. In this study, spherical MnFeO@xC nanocomposites composed of MnFeO inner cores and tunable carbon shell thicknesses were successfully prepared and utilized as anode materials for SIBs. It was found that the property of the carbon shell plays a crucial role in tuning the electrochemical performance of MnFeO@xC nanocomposites and an appropriate carbon shell thickness (content) leads to the optimal battery performance. Thus, compared to MnFeO@1C and MnFeO@8C, MnFeO@4C nanocomposite exhibits optimal electrochemical performance by releasing a reversible specific capacity of around 308 mAh·g at 0.1 A·g with 93% capacity retention after 100 cycles, 250 mAh·g at 1.0 A g with 73% capacity retention after 300 cycles in a half cell, and around 111 mAh·g at 1.0 C when coupled with a NaV(PO) (NVP) cathode in a full SIB cell.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11356791PMC
http://dx.doi.org/10.3390/molecules29163912DOI Listing

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