Computational Materials Science2022,Vol.20712.DOI:10.1016/j.commatsci.2022.111322

Implications of coordination chemistry to cationic interactions in honeycomb layered nickel tellurates

Masese, Titus Kanolo, Godwill Mbiti Tada, Kohei
Computational Materials Science2022,Vol.20712.DOI:10.1016/j.commatsci.2022.111322

Implications of coordination chemistry to cationic interactions in honeycomb layered nickel tellurates

Masese, Titus 1Kanolo, Godwill Mbiti 2Tada, Kohei1
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作者信息

  • 1. Natl Inst Adv Ind Sci & Technol
  • 2. Univ Electrocommun
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Abstract

Honeycomb layered tellurates represent a burgeoning class of multi-functional materials with fascinating crystal-structural versatility and a rich composition space. Despite their multifold capabilities, their compositional di-versity remains underexplored due to complexities in experimental design and syntheses. Thus, in a bid to expand this frontier and derive relevant insights into allowed metastable compositions, we employ a density functional theory (DFT) approach to predict in silico the crystal structures of new honeycomb layered tellurates embodied by the composition, A(2)Ni(2)TeO(6) (A = alkali, hydrogen or coinage-metal cations). Here, alkali-metal atoms with vastly larger radii than K (for instance, Rb and Cs) are found to engender a prismatic coordination with the oxygen atoms from the honeycomb slabs whilst coinage-metal atoms (such as Ag, Au and Cu) display a propensity for linear coordination. Further, H2Ni2TeO6 is found to also render a linear coordination wherein the hydrogen atom preferentially establishes a stronger coordination with one of the oxygen atoms to form hydroxyl groups. All A cations in the studied & nbsp;A(2)Ni(2)TeO(6) compositions form a honeycomb lattice. Conclusions on the possibility of a monolayer-bilayer phase transition in coinage metal atom tellurates can be drawn by considering the implications of conformal symmetry of the cation honeycomb lattice and metallophilicity. This work not only propounds new honeycomb layered tellurate compositions but also provides novel insight into the rational design of multifunctional materials for applications ranging from energy storage, catalysis and optics to analogue condensed matter systems of gravity.

Key words

Density functional theory/Honeycomb layered frameworks/Coordination chemistry/Metallophilic interactions/Monolayer-bilayer phase transition/INITIO MOLECULAR-DYNAMICS/TOTAL-ENERGY CALCULATIONS/SODIUM-ION CONDUCTION/MAGNETIC-PROPERTIES/HIGH-VOLTAGE/POSITIVE ELECTRODE/DOPED NA2ZN2TEO6/CATHODE MATERIAL/OXIDE/NI

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出版年

2022
Computational Materials Science

Computational Materials Science

EISCI
ISSN:0927-0256
被引量6
参考文献量88
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