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首页> 外文期刊>Advanced energy materials >The Sodium Storage Mechanism in Tunnel-Type Na_(0.44)MnO_2 Cathodes and the Way to Ensure Their Durable Operation
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The Sodium Storage Mechanism in Tunnel-Type Na_(0.44)MnO_2 Cathodes and the Way to Ensure Their Durable Operation

机译:隧道型NA_(0.44)MNO_2阴极中的钠储存机制及以确保其耐用操作的方式

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摘要

Tunnel-type sodium manganese oxide is a promising cathode material for aqueousonaqueous sodium-ion batteries, however its storage mechanism is not fully understood, in part due to the complicated sodium intercalation process. In addition, low cyclability due to manganese dissolution has limited its practical application in rechargeable batteries. Here, the intricate sodium intercalation mechanism of Na0.44MnO2 is revealed by combination of electrochemical characterization, structure determination from powder X-ray diffraction data, 3D bond valence difference maps, and barrier-energy calculations of the sodium diffusion. NaI is proposed as an important electrolyte solution additive. It is shown to form a thin, beneficial, and durable cathode surface film that prevents manganese dissolution. The addition of 0.01 m NaI to electrolyte solutions based on alkyl carbonate solvents and NaClO4 greatly improves the cycling efficiency, raising the capacity retention from 86% to 96% after 600 cycles. This study determines the core aspects of the sodium intercalation mechanism in tunnel-type sodium manganese oxide and shows how it can serve as a durable cathode material for rechargeable Na batteries.
机译:隧道型锰氧化物是用于含水/非水 - 离子电池的有希望的阴极材料,但是由于钠嵌入过程复杂,但其储存机制不完全理解。此外,由于锰溶解导致的低可循环性限制了其在可充电电池中的实际应用。这里,通过电化学表征,结构测定从粉末X射线衍射数据,3D键扩散的阻挡能量计算,通过电化学表征,结构测定和偏移的阻挡能量计算来揭示Na0.44mNO2的复杂钠嵌入机制。建议作为一个重要的电解质溶液添加剂。显示形成薄,有益和耐用的阴极表面膜,可防止锰溶解。基于碳酸烷基盐溶剂和NaClO4的电解质溶液加入0.01m Nai,大大提高了循环效率,在600次循环后提高86%至96%的容量保留。该研究确定了隧道型锰氧化物中钠嵌入机制的核心方面,并展示了它如何用作可充电Na电池的耐用阴极材料。

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