CVD-Synthesized Titanium Carbide Nanoflowers as High-Performance Anodes for Sodium-Ion Batteries.

Nano Lett

Department of Electrical Engineering and Computer Science, Jerome J. Lohr College of Engineering, South Dakota State University, Brookings, South Dakota 57007, United States.

Published: October 2024

AI Article Synopsis

  • Sodium-ion batteries (SIBs) are gaining attention for energy storage due to the cost-effectiveness and availability of sodium, but they face challenges with sodium ion diffusion and electrode volume expansion.
  • Researchers successfully created porous titanium carbide (TiC) nanoflowers using chemical vapor deposition, which improve conductivity and sodium ion diffusion for better battery performance.
  • The TiC nanoflowers showed a high reversible capacity of 73.5 mAh/g after 2500 cycles and contributed to a full SIB setup, demonstrating impressive cycling stability and capacity retention.

Article Abstract

Sodium-ion batteries (SIBs) have emerged as promising candidates for energy storage applications due to the abundance and low cost of sodium. However, the larger radius of sodium ions limits their diffusion kinetics within electrode materials and contributes to electrode volume expansion. Here, we successfully synthesized porous titanium carbide (TiC) nanoflowers through chemical vapor deposition (CVD). The TiC nanoflowers exhibit exceptional electrochemical performance as SIB anodes, with their porous structure enhancing the conductivity, mechanical stability, and Na-ion diffusion. The TiC nanoflowers demonstrate a high reversible specific capacity of 73.5 mAh g at 1 A g after 2500 cycles, corresponding to an impressive capacity retention of 80.81%. Additionally, we developed a full sodium-ion cell utilizing TiC nanoflowers as the anode and NaV(PO) as the cathode, which demonstrates a substantial reversible capacity and outstanding cycling stability. Our work presents a promising strategy for synthesizing nanostructured TiC materials as anode electrodes for SIBs.

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Source
http://dx.doi.org/10.1021/acs.nanolett.4c03597DOI Listing

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