柯肯德尔效应
材料科学
化学工程
阴极
复合数
钢筋
磁滞
电压
电化学
纳米技术
热解
纳米颗粒
电极
复合材料
导电体
储能
格子(音乐)
纳米片
超级电容器
立方氧化锆
高压
渗透剂(生化)
压力(语言学)
介孔材料
介电谱
电阻抗
相变
电催化剂
作者
Changlong Lei,Zhenya Sui,Yunjiao Li,Zhenjiang He
标识
DOI:10.1021/acssuschemeng.5c11098
摘要
To address the challenges of structural degradation, slow Na+ kinetics, and voltage hysteresis in Na4Fe3(PO4)2P2O7 (NFPP)-based cathodes, we propose a carbon–lattice synergistic reinforcement strategy by introducing nano-TiO2 into a previously developed biphasic NFPP–Na2FeP2O7 (NFPO) composite (NFPP&NFPO). TiO2 mediates the pyrolysis of glucose, promoting the strengthening of the carbon framework while guiding the cogrowth of NFPP and NFPO phases through a hard-template-like effect. This enables the preservation of the hollow microspherical morphology from the spray-dried precursor, shortens Na+ diffusion pathways, and enhances the mechanical stability. Meanwhile, the partial substitution of Ti4+ into the NFPP lattice via the Kirkendall effect induces lattice contraction and creates redox-active Ti sites. The reversible Ti4+/Ti3+ transformation introduces a spring-like effect that mitigates stress during phase transitions and suppresses impedance fluctuations. As a result, the optimized NFPP&NFPOTi-2 delivers superior electrochemical performance, including 65.44 mAh g–1 at 50 C, nearly zero capacity decay over 500 cycles at 2 C, and 90.74% capacity retention after 10,000 cycles at 20 C with a voltage hysteresis of only 1.12 V. This study presents a feasible and scalable modification strategy for developing high-power, long-life sodium-ion battery cathodes.
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