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Published on: November 11, 2013
Overcoming Sluggish Kinetics in Na4Fe3(PO4)2P2O7 via Synergistic Zr Doping and Iron Defect Engineering for
Yue Wang1, Xue Zhang1, Xuejie Wang1
1Laboratory of Solar Fuel, Faculty of Materials Science and Chemistry, China University of Geosciences, 68 Jincheng Street, Wuhan 430078, P. R. China.
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The Na4Fe3(PO4)2P2O7 (NFPP) cathode material shows promising potential for sodium-ion batteries (SIBs) due to its cost-effectiveness and high theoretical capacity. However, the unavoidable formation of NaFePO4 impurities during synthesis and its poor intrinsic electrical conductivity have restricted its large-scale practical application. Herein, we propose a comprehensive strategy integrating Zr doping, Fe-defect engineering, and carbon coating to synergistically optimize the electrochemical performance of NFPP. Zr4+ doping induces lattice distortion in the NFPP framework, creating additional interstitial sites for Na+ migration and accelerating ion transport kinetics. Meanwhile, the introduction of Fe-defects modifies the local electronic structure by generating defect states near the Fermi level, which lowers the energy barrier for Fe2+/Fe3+ redox reactions. A homogeneous carbon layer deposited on the particle surface enhances electrical conductivity and mitigates mechanical degradation. The Na4Fe2.92Zr0.02(PO4)2(P2O7) achieves a high capacity of 91 mAh g-1 at 50 C and 95.24% capacity retention after 4500 cycles at 10 C. This work provides a paradigm for rational design of polyanionic cathode materials, demonstrating that atomic-level compositional tuning and structural engineering can overcome the intrinsic limitations of NFPP for practical SIB applications.

