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Na-Rich Na3+xV2-xNix(PO4)(3)/C for Sodium Ion Batteries: Controlling the Doping Site and Improving the Electrochemical Performances

机译:用于钠离子电池的富Na3 + xV2-xNix(PO4)(3)/ C:控制掺杂位点并改善电化学性能

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摘要

In order to get an, element substituted into Na3V2(PO4)(3)/C in an appointed V site, the simple sol gel method is used to design and prepare a series of Na-rich Na3+xV2- Ni-x(x)(PO4)(3)/C (x = 0-0.07) compounds. To get a charge balance, the ratio of Na, V, and Ni would be changed if Ni goes into a different site. Hence, ICP is applied to probe the real stoichiometry of the as-prepared Na3+xV2- Ni-x(x)(PO4)(3)/C (x = 0-0.07). According to the Na/V ratio from the ICP result, it indicates that Ni2+ goes to a V site, and more Na+ will be introduced into the crystal to keep the charge balance. In addition, the crystal structure changes are explored by XRD and Rietveld refinement, it is indicated from the results that Ni2+ doping does not destroy the lattice structure of Na3V2(PO4)(3). When applied as Na-storage material, the electrochemical property of all Ni2+ doped Na3+xV2- Ni-x(x)(PO4)(3)/C composites have been significantly improved, especially for the Na3.03V1.97Ni0.03(PO4)(3)/C sample. For example, 107.1 mAh g(-1) can be obtained at the first cycle; after 100 cycles, the capacity retention is as high as 95.5%. Moreover, when charging/discharging at a higher rate of 5 C, the capacity still remains 88.9 mAh g(-1), displaying good rate performance. The good electrochemical performance is ascribed to the optimized morphology, stable crystal structure, and unproved ionic conductivity.
机译:为了在指定的V位置将元素替换为Na3V2(PO4)(3)/ C,使用简单的溶胶凝胶法设计并制备了一系列富含Na的Na3 + xV2-Ni-x(x )(PO4)(3)/ C(x = 0-0.07)化合物。为了获得电荷平衡,如果Ni进入其他位置,则Na,V和Ni的比例会发生变化。因此,ICP用于探测制备的Na3 + xV2-Ni-x(x)(PO4)(3)/ C(x = 0-0.07)的实际化学计量。根据ICP结果的Na / V比,表明Ni2 +进入V位,并且更多的Na +将被引入晶体以保持电荷平衡。此外,通过XRD和Rietveld精炼探索了晶体结构的变化,结果表明Ni2 +掺杂不会破坏Na3V2(PO4)(3)的晶格结构。当用作Na储存材料时,所有Ni2 +掺杂的Na3 + xV2- Ni-x(x)(PO4)(3)/ C复合材料的电化学性能都得到了显着改善,特别是对于Na3.03V1.97Ni0.03( PO4)(3)/ C样品。例如,在第一个循环中可获得107.1 mAh g(-1); 100次循环后,容量保持率高达95.5%。此外,当以较高的5 C速率充电/放电时,容量仍保持88.9 mAh g(-1),显示出良好的速率性能。良好的电化学性能归因于最佳的形态,稳定的晶体结构和未经证实的离子电导率。

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