Chemical Bonding Effects and Physical Properties of Noncentrosymmetric Hexagonal Fluorocarbonates ABCO3F (A: K, Rb, Cs; B: Mg, Ca, Sr, Zn, Cd)
Влияние химической связи и физические свойства нецентросимметричных гексагональных фторкарбонатов ABCO3F (A: K, Rb, Cs; B: Mg, Ca, Sr, Zn, Cd)
2022-10-12
SCID: 54.1/ut9x62jg
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Birch–Murnaghan equation of statePBE+D3(BJ)Voigt–Reuss–Hill approximationsdensity functional theoryinfrared and Raman spectra
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Abstract (AI)
The present work applied the methods of density functional theory and the van der Waals interaction PBE + D3(BJ) on the basis of localized orbitals of the CRYSTAL17 package. It featured the effect of interactions between structural elements of fluorocarbonates ABCO3F (A: K, Rb, Cs; B: Mg, Ca, Sr, Zn, Cd) on their elastic and vibrational properties. The hexagonal structures proved to consist of alternating ···B-CO3··· and ···A-F··· layers in planes ab, interconnected along axis c by infinite chains ···F-B-F···, where cations formed polyhedra AOnF3 and BOmF2. The calculations included the band energy structure, the total and partial density of electron states, the energy and band widths of the upper ns- and np-states of alkali and alkaline-earth metals, as well as nd-zinc and nd-cadmium. For hydrostatic compression, we calculated the parameters of the Birch–Murnaghan equation of state and the linear compressibility moduli along the crystal axes and bond lines. We also defined the elastic constants of single crystals to obtain the Voigt–Reuss–Hill approximations for the elastic moduli of polycrystalline materials. The study also revealed the relationship between the elastic properties and the nature of the chemical bond. Hybrid functional B3LYP made it possible to calculate the modes of normal long-wavelength oscillations, which provided the spectra of infrared absorption and Raman scattering. Intramolecular modes ν1 and ν4 with one or two maxima were found to be intense, and their relative positions depended on the lengths of nonequivalent C–O bonds.
Key Findings
1
A relationship is established between elastic properties and the chemical-bonding nature in the noncentrosymmetric hexagonal structures.
2
B3LYP vibrational calculations predict intense infrared and Raman intramolecular ν1 and ν4 modes; their spectral positions depend on nonequivalent C–O bond lengths.
3
Density-functional calculations show that ABCO3F fluorocarbonates comprise alternating B–CO3 and A–F layers, interconnected along the c axis by infinite F–B–F chains.
4
The crystal structures contain AOnF3 and BOmF2 coordination polyhedra, with bonding interactions governing the compounds’ elastic and vibrational properties.
5
The study calculates electronic structures, hydrostatic-compression parameters, directional compressibilities, single-crystal elastic constants, and Voigt–Reuss–Hill polycrystalline moduli for the fluorocarbonates.
Research Object
Noncentrosymmetric hexagonal fluorocarbonates ABCO3F (A = K, Rb, Cs; B = Mg, Ca, Sr, Zn, Cd)
Research Subject
The effects of chemical interactions and bonding nature on the electronic, elastic, compressional, and vibrational properties of the fluorocarbonate crystals
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2022-10-12
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