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Quantum mechanical modeling of Zn-based spinel oxides: Assessing the structural,vibrational, and electronic properties
Authors:Marisa C Oliveira  Renan A P Ribeiro  Elson Longo  Mauricio R D Bomio  Sergio R de Lázaro
Institution:1. LSQM—Laboratory of Chemical Synthesis of Materials—Department of Materials Engineering, Federal University of Rio Grande do Norte, Natal, Rio Grande do Norte, Brazil;2. CDMF-LIEC, Federal University of São Carlos, São Carlos, São Paulo, Brazil;3. CDMF-LIEC, Federal University of São Carlos, São Carlos, São Paulo, Brazil

Contribution: ?Investigation, Supervision, Writing - original draft, Writing - review & editing;4. LSQM—Laboratory of Chemical Synthesis of Materials—Department of Materials Engineering, Federal University of Rio Grande do Norte, Natal, Rio Grande do Norte, Brazil

Contribution: ?Investigation, Supervision, Writing - original draft, Writing - review & editing;5. Department of Chemistry, State University of Ponta Grossa, Ponta Grossa, Puerto Rico, Brazil

Contribution: Conceptualization, Formal analysis, ?Investigation, Resources, Supervision, Writing - original draft, Writing - review & editing

Abstract:The structural, electronic, and vibrational properties of two leading representatives of the Zn-based spinel oxides class, normal ZnX2O4 (X = Al, Ga, In) and inverse Zn2MO4 (M = Si, Ge, Sn) crystals, were investigated. In particular, density functional theory (DFT) was combined with different exchange-correlation functionals: B3LYP, HSE06, PBE0, and PBESol. Our calculations showed good agreement with the available experimental data, showing a mean percentage error close to 3% for structural parameters. For the electronic structure, the obtained HSE06 band-gap values overcome previous theoretical results, exhibiting a mean percentage error smaller than 10.0%. In particular, the vibrational properties identify the significant differences between normal and inverse spinel configurations, offering compelling evidence of a structure-property relationship for the investigated materials. Therefore, the combined results confirm that the range-separated HSE06 hybrid functional performs the best in spinel oxides. Despite some points that cannot be directly compared to experimental results, we expect that future experimental work can confirm our predictions, thus opening a new avenue for understanding the structural, electronic, and vibrational properties in spinel oxides.
Keywords:DFT  electronic structure  hybrid functional  Zn-based spinel oxides
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