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首页> 外文期刊>Advanced Functional Materials >Lithium-Substituted Tunnel/Spinel Heterostructured Cathode Material for High-Performance Sodium-Ion Batteries
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Lithium-Substituted Tunnel/Spinel Heterostructured Cathode Material for High-Performance Sodium-Ion Batteries

机译:用于高性能钠离子电池的锂取代的隧道/尖晶石异质结构阴极材料

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摘要

Sodium manganese oxides as promising cathode materials for sodium-ion batteries (SIBs) have attracted interest owing to their abundant resources and potential low cost. However, their practical application is hindered due to the manganese disproportionation associated with Mn3+, resulting in rapid capacity decline and poor rate capability. Herein, a Li-substituted, tunnel/spinel heterostructured cathode is successfully synthesized for addressing these limitations. The Li dopant acts as a pillar inhibiting unfavorable multiphase transformation, improving the structural reversibility, and sodium storage performance of the cathode. Meanwhile, the tunnel/spinel heterostructure provides 3D Na+ diffusion channels to effectively enhance the redox reaction kinetics. The optimized [Na0.396Li0.044][Mn0.97Li0.03]O-2 composite delivers an excellent rate performance with a reversible capacity of 97.0 mA h g(-1) at 15 C, corresponding to 82.5% of the capacity at 0.1 C, and a promising cycling stability over 1200 cycles with remarkable capacity retention of 81.0% at 10 C. Moreover, by combining with hard carbon anodes, the full cell demonstrates a high specific capacity and favorable cyclability. After 200 cycles, the cell provides 105.0 mA h g(-1) at 1 C, demonstrating the potential of the cathode for practical applications. This strategy might apply to other sodium-deficient cathode materials and inform their strategic design.
机译:锰氧化钠作为钠离子电池(SIBS)的有前途的阴极材料,由于其丰富的资源和潜在的低成本而引起了利益。然而,由于与MN3 +相关的锰歧化,它们的实际应用受到阻碍,导致能力快速下降和差价不良。在此,成功地合成了Li-in取代的隧道/尖晶石异质结构阴极以解决这些限制。李掺杂剂用作抑制不利的多相转化的柱,改善了阴极的结构可逆性和钠储存性能。同时,隧道/尖晶石异质结构提供3D Na +扩散通道,以有效增强氧化还原反应动力学。优化的[NA0.396LI0.044] [MN0.97LI0.03] O-2复合材料在15℃下可逆容量为97.0 mA Hg(-1),相当于0.1的容量的82.5% C,以及超过1200次循环的有前途的循环稳定性,并且在10℃下具有显着容量保持81.0%的循环。此外,通过与硬碳阳极组合,全细胞显示出高特定的容量和有利的可行性。在200次循环之后,电池在1℃下提供105.0mA H(-1),证明了用于实际应用的阴极的电位。该策略可能适用于其他钠缺乏的阴极材料,并告知其战略设计。

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