<p>Density functional theory study of NaMNbO<sub>4</sub> and NaMSbO<sub>4</sub> (M = Ni/Co/Mn/Fe), for using them as cathode materials in sodium ion battery, was computed in this work. The study showed that while transition metal atoms M act as the redox center, Nb/Sb acts as a matrix and holds the structural integrity. The electrochemical voltages were found to have values 4.71&#xa0;V, 4.12&#xa0;V, 2.82&#xa0;V, and 3.52&#xa0;V for NaMSbO<sub>4</sub> while having values 4.34&#xa0;V, 4.04&#xa0;V, 2.96&#xa0;V, and 3.50&#xa0;V for NaMNbO<sub>4</sub>, respectively for M = Ni, Co, Fe, and Mn. The voltage trend is in the increasing order in accordance with Ni &gt; Co &gt; Mn &gt; Fe. This trend can be explained by the Hund’s rule. The structural studies indicated that the volume strain during charging is &lt; 5% for all the materials. The high redox potential with minimal volume strain of NaMNb/SbO<sub>4</sub> (with M = Ni/Co/Mn/Fe) presents them as excellent cathode material for Na ion battery applications. Simulation of the diffusion barrier (activation energy) and room temperature ionic conductivity indicates that a moderate diffusion barrier ~ 0.274–0.527&#xa0;eV exists in these composites with average ionic conductivity ~ 10<sup>−6</sup> to 10<sup>−8</sup> S/cm.</p>

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Feasibility of NaMNbO4 and NaMSbO4 (M = Ni, Co, Mn, Fe) for their use as high voltage cathode materials in sodium ion battery—a DFT study

  • Shamik Chakrabarti,
  • A. K. Thakur

摘要

Density functional theory study of NaMNbO4 and NaMSbO4 (M = Ni/Co/Mn/Fe), for using them as cathode materials in sodium ion battery, was computed in this work. The study showed that while transition metal atoms M act as the redox center, Nb/Sb acts as a matrix and holds the structural integrity. The electrochemical voltages were found to have values 4.71 V, 4.12 V, 2.82 V, and 3.52 V for NaMSbO4 while having values 4.34 V, 4.04 V, 2.96 V, and 3.50 V for NaMNbO4, respectively for M = Ni, Co, Fe, and Mn. The voltage trend is in the increasing order in accordance with Ni > Co > Mn > Fe. This trend can be explained by the Hund’s rule. The structural studies indicated that the volume strain during charging is < 5% for all the materials. The high redox potential with minimal volume strain of NaMNb/SbO4 (with M = Ni/Co/Mn/Fe) presents them as excellent cathode material for Na ion battery applications. Simulation of the diffusion barrier (activation energy) and room temperature ionic conductivity indicates that a moderate diffusion barrier ~ 0.274–0.527 eV exists in these composites with average ionic conductivity ~ 10−6 to 10−8 S/cm.