Na4Fe3(PO4)2P2O7 (NFPP) holds great potential as a promising cathode material for sodium-ion batteries. However, its practical viability remains severely constrained by the formation of electrochemically inactive maricite-NaFePO4 during synthesis, low inherent conductivity, and intrinsically sluggish Na+ transport. Herein, we present a cathode featuring a cheese-like porous framework, which effectively overcomes existing limitations, enabling highly efficient dual ionic-electronic conduction. The interconnected porous architecture dramatically shortens Na+ diffusion pathways and facilitates rapid electrolyte infiltration, thereby accelerating ion-transport kinetics, while the mechanically resilient block morphology efficiently buffers the substantial volume fluctuations during charge-discharge cycling. Concurrently, the incorporation of Cr3+ markedly accelerates charge-transfer kinetics while effectively suppressing electrostatic repulsion during (de)sodiation, resulting in a reduced Na+ migration barrier and the activation of Na3 sites. Consequently, this design enables a highly reversible capacity of 117.9 mAh g-1 at 0.1C together with exceptional long-term stability, retaining 90.7% capacity after 3000 cycles at 20C. This study establishes a powerful structural-engineering paradigm for the rational design and modification of high-performance sodium-ion cathode materials.
Zheng et al. (Mon,) studied this question.
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