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首页> 外文期刊>Energy & environmental science >High voltage structural evolution and enhanced Na-ion diffusion in P2-Na_(2/3)Ni_(1/3-x)Mg_xMn_(2/3)O_2 (0 ≤ x ≤ 0.2) cathodes from diffraction, electrochemical and ab initio studies
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High voltage structural evolution and enhanced Na-ion diffusion in P2-Na_(2/3)Ni_(1/3-x)Mg_xMn_(2/3)O_2 (0 ≤ x ≤ 0.2) cathodes from diffraction, electrochemical and ab initio studies

机译:通过衍射,电化学和从头算研究研究P2-Na_(2/3)Ni_(1 / 3-x)Mg_xMn_(2/3)O_2(0≤x≤0.2)阴极中的高压结构演变和增强的Na离子扩散

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We have presented a detailed investigation of the effects of Mg substitution on the structure, electrochemical performance and Na-ion diffusion in high voltage P2-type Na2/3Ni1/3 xMgxMn2/3O2 ( 0 o x o 0.2) cathode materials for Na-ion batteries. Structural analysis using neutron diffraction showed that Mg2+ substitutes at Ni2+ sites from ordered [( Ni2+/Mn4+) O6] honeycomb units along the ab-plane, leading to an AB-type structure that can be indexed using the P63 space group. Within the sodium layers, high Mg-substitution levels ( i. e. x = 0.2) caused a disruption in the typical Na zig-zag ordering observed in the undoped material, leading to a more disordered Na distribution in the layers. Load curves of the x = 0.1 and 0.2 materials show smooth electrochemistry, indicative of a solid-solution process. Furthermore, DFT calculations showed an increase in Na-ion diffusivity for the Mg-substituted samples. Enhanced cycling stability was also observed in these materials; structural analysis using high-resolution in operando synchrotron X-ray diffraction show that such an improved electrochemical performance is caused by the suppression of the O2 phase and switch to the formation of an OP4 phase. Ab initio studies support our experimental evidence showing that the OP4 phase ( cf. O2) is the most thermodynamically stable phase at high voltages for Mg-substituted compounds. Finally, we have provided evidence using diffraction for the x = 1/2 and x = 1/3 intermediate Na+-vacancy ordered phases in P2-Na2/3Ni1/3Mn2/3O2.
机译:我们已经提出了对钠离子电池中高压P2型Na2 / 3Ni1 / 3 xMgxMn2 / 3O2(0 o x o 0.2)正极材料中Mg替代对结构,电化学性能和Na离子扩散的影响的详细研究。使用中子衍射的结构分析表明,沿ab平面有序[(Ni2 + / Mn4 +)O6]蜂窝单元在Ni2 +位置的Mg2 +替代物,导致了AB型结构,可以使用P63空间群进行索引。在钠层中,高的Mg取代水平(即x = 0.2)导致在未掺杂材料中观察到的典型Na Z字形有序排列中断,导致Na层中的钠分布更加混乱。 x = 0.1和0.2的材料的载荷曲线显示出平滑的电化学,表明存在固溶过程。此外,DFT计算表明,Mg取代样品的Na离子扩散率增加。在这些材料中还观察到增强的循环稳定性。使用操作同步子X射线衍射中的高分辨率进行的结构分析表明,这种改善的电化学性能是由O2相的抑制和转变为OP4相的形成所致。从头算的研究支持了我们的实验证据,表明OP4相(比照O2)是高压下镁取代的化合物在热力学上最稳定的相。最后,我们提供了在P2-Na2 / 3Ni1 / 3Mn2 / 3O2中x = 1/2和x = 1/3的中间Na +-空位有序相使用衍射的证据。

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