AI Article Synopsis

  • Silicon-based anode materials show promise as replacements for graphite due to their high capacity and availability, but they face issues like poor conductivity and volume changes during use.
  • To address these challenges, the study explores a method that coats silicon nanoparticles with manganese oxide and carbon nanofibers, enhancing their stability and performance.
  • After extensive testing, the resulting anode material retains a high capacity of 994.4 mAh/g even after 1100 cycles, highlighting its potential for future lithium-ion battery applications.

Article Abstract

Due to its many benefits, including high specific capacity, low voltage plateau, and plentiful supplies, silicon-based anode materials are a strong contender to replace graphite anodes. However, silicon has drawbacks such as poor electrical conductivity, abrupt volume changes during the discharge process, and continuous growth of the solid electrolyte interfacial (SEI) film during cycling, which would cause the electrode capacity to degrade quickly. Coating the silicon's exterior with carbon or metal oxide is a popular method to resolve the above-mentioned problems. In light of those above, the liquid-phase approach and electrostatic spinning technique were used in this work to create Si@MnO@CNFs bilayer-coated silicon-based anode materials. Because of the well-thought-out design, MnO and C bilaterally coat the silicon nanoparticles, significantly reducing their volume effect during cycling. Furthermore, manganese oxide has outstanding electrochemical kinetics and an excellent theoretical capacity. The carbon nanofibers' outermost layer increases the material's conductivity and stabilizes the composite material's structure, reducing the volume effect. After 1100 cycles at 2 A g, the composite anode material prepared in this work can still maintain a high capacity of 994.4 mAh g. This study offers an unusual combination of silicon and MnO that might set the way for the application of silicon-based composites in lithium-ion batteries.

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Source
http://dx.doi.org/10.1021/acsami.4c06205DOI Listing

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