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Unveiling the thermodynamic and kinetic properties of NaxFe(SO4)2 (x = 0–2) : toward a high-capacity and low-cost cathode material

机译:揭示NaxFe(SO4)2(x = 0–2)的热力学和动力学性质:向高容量和低成本的阴极材料发展

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摘要

The mineral eldfellite, NaFe(SO4)2, was recently proposed as an inexpensive candidate for the next generation of cathode application in Na-based batteries. Employing the density functional theory framework, we have investigated the phase stability, electrochemical properties and ionic diffusion of this eldfellite cathode material. We showed that the crystal structure undergoes a volume shrinkage of ≈8% upon full removal of Na ions with no imaginary frequencies at the Γ point of phonon dispersion. This evokes the stability of the host structure. According to this result, we proposed structural changes to get higher specific energy by inserting two Na ions per redox-active metal. Our calculations indicate NaV(SO4)2 as the best candidate with the capability of reversibly inserting two Na ions per redox center and producing an excellent specific energy. The main bottleneck for the application of eldfellite as a cathode is the high activation energies for the Na+ ion hop, which can reach values even higher than 1 eV for the charged state. This effect produces a low ionic insertion rate.
机译:矿物长铁矿NaFe(SO4)2,最近被提出作为廉价的候选物,用于Na基电池的下一代阴极应用。利用密度泛函理论框架,我们研究了该长铁锰矿阴极材料的相稳定性,电化学性能和离子扩散。我们表明,在声子弥散的Γ点完全去除Na离子时,没有虚构频率的Na离子,晶体结构发生了8%的体积收缩。这唤起了主体结构的稳定性。根据该结果,我们提出了结构上的改变,以便通过在每个氧化还原活性金属中插入两个Na离子来获得更高的比能。我们的计算表明,NaV(SO4)2是最佳候选者,具有在每个氧化还原中心可逆地插入两个Na离子并产生出色的比能的能力。将艾氏铁矿用作阴极的主要瓶颈是Na +离子跃点的高活化能,对于带电状态,其活化能甚至可以达到1 eV以上。该效果产生低的离子插入速率。

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