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April 11, 2026ACS Omega2 citationsOpen Access

Two-Step Carbon Coating and Zn/Si Codoping Engineering in Na 3 V 2 (PO 4 ) 3 : Constructing a Porous-Structured Cathode for High-Rate and Long-Life Sodium-Ion Batteries

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HYHaoye YuanJFJinwang FengNLNa Li

Key Points

  • The aim is to improve the performance of Na3V2(PO4)3 as a cathode material in sodium-ion batteries through engineering modifications.
  • Developed a porous Na3V2(PO4)3 cathode material with two-step carbon coating and Zn/Si codoping.
  • Electrochemical characterization assessed specific capacity and cycling stability.
  • Evaluated the effects of structural modifications on electronic and ionic conductivity.
  • Achieved a specific capacity of 97.39 mAh g–1 at a current rate of 10.0 C.
  • Showed capacity retention of 90.3% after 2000 cycles.
  • Maintained 92.2 mAh g–1 at a high rate of 20.0 C with 91.2% retention after 2300 cycles.
  • Demonstrated stability over 1400 cycles at 2.0 C.

Abstract

The practical application of Na3V2(PO4)3 (NVP) is impeded by its inherent limitations of low intrinsic electronic conductivity and structural instability. To address these challenges, this study develops a porous cathode material featuring two-step carbon coating and Zn/Si-codoped NVP (NZnVPSi/TC). Electrochemical characterization reveals that Zn/Si codoping effectively enhances the specific capacity at low current rates, whereas the two-step carbon coating significantly improves high current rate performance. Notably, the three-dimensional conductive network and porous architecture synergistically boost the electrochemical performance of NZnVPSi/TC by facilitating enhanced electronic/ionic conductivity and accelerating the reaction kinetics. Consequently, the NZnVPSi/TC cathode delivers a remarkable specific capacity of 97.39 mAh g–1 at 10.0 C, with a capacity retention of 90.3% after 2000 cycles. Furthermore, even at a high rate of 20.0 C, the NZnVPSi/TC cathode maintains a specific capacity of 92.2 mAh g–1, accompanied by an excellent capacity retention of 91.2% after 2300 cycles. Finally, the full cell exhibits impressive stability (over 1400 cycles at 2.0 C), which underscores its significant potential for sodium-ion battery applications.

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Cite This Study

Yuan et al. (2026) studied this question.

synapsesocial.com/papers/69d9e57078050d08c1b759dahttps://doi.org/10.1021/acsomega.5c10468
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