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Efficient Method of Designing Stable Layered Cathode Material for Sodium Ion Batteries Using Aluminum Doping

机译:使用铝掺杂设计钠离子电池稳定层状阴极材料的高效方法

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Despite their high specific capacity, sodium layered oxides suffer from severe capacity fading when cycled at higher voltages. This key issue must be addressed in order to develop high-performance cathodes for sodium ion batteries (SIBs). Herein, we present a comprehensive study on the influence of Al doping of Mn sites on the structural and electrochemical properties of a P2- Na0.5Mn0.5-xAlxCo0.5O2 (x = 0, 0.02, or 0.05) cathode for SIBs. Detailed structural, morphological, and electrochemical investigations were carried out using X-ray diffraction, cyclic voltammetry, and galvanostatic charge-discharge measurements, and some new insights are proposed. Rietveld refinement confirmed that Al doping caused TMO6 octahedra (TM = transition metal) shrinkage, resulting in wider interlayer spacing. After optimizing the aluminum concentration, the cathode exhibited remarkable electrochemical performance, with better stability and improved rate performance. Electrochemical impedance spectroscopy (EIS) measurements were performed at various states of charge to probe the surface and bulk effects of Al doping. The material presented here exhibits exceptional stability over 100 cycles within a 1.5-4.3 V window and outperforms several other Mn-Co-based cathodes for SIBs. This study presents a facile method for designing structurally stable cathodes for SIBs.
机译:尽管它们具有高特定能力,但钠氧化钠在较高电压下循环时患有严重的容量衰落。必须解决此关键问题,以便为钠离子电池(SIB)开发高性能阴极。在此,我们对SIBs的P2-Na0.5mN0.5-XalxCoO 2(x = 0,0.02或0.05)阴极的结构和电化学性能进行了综合研究。使用X射线衍射,循环伏安法和电镀电荷放电测量进行详细的结构,形态和电化学研究,提出了一些新的见解。 RIETVELD改进证实,AL掺杂引起TMO6八面体(TM =过渡金属)收缩,导致更宽的层间间距。在优化铝浓度之后,阴极表现出显着的电化学性能,具有更好的稳定性和提高的速率性能。在各种电荷状态下进行电化学阻抗光谱(EIS)测量以探测Al掺杂的表面和散装效应。这里提出的材料在1.5-4.3V窗口内具有超过100个循环的特殊稳定性,并且优于SIBs的几个其他Mn-Co基阴极。该研究介绍了用于设计用于SIB的结构稳定阴极的容易方法。

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