Insights into the Fe3+ Doping Effects on the Structure and Electron Distribution of Cr2O3 Nanoparticles

Author:

Santos Cledson12ORCID,Attah-Baah John M.12ORCID,Junior Romualdo S. Silva12ORCID,Mâcedo Marcelo A.12ORCID,Rezende Marcos V. S.1ORCID,Matos Robert S.3ORCID,Ţălu Ştefan4ORCID,Trong Dung Nguyen5ORCID,da Paz Simone P. A.6,Angélica Rômulo S.6ORCID,Ferreira Nilson S.127ORCID

Affiliation:

1. Department of Physics, Federal University of Sergipe, São Cristóvão 49100-000, SE, Brazil

2. Laboratory of Corrosion and Nanotechnology (LCNT), Federal University of Sergipe, São Cristóvão 49100-000, SE, Brazil

3. Amazonian Materials Group, Federal University of Amapá, Macapá 68902-280, AP, Brazil

4. The Directorate of Research, Development and Innovation Management (DMCDI), Technical University of Cluj-Napoca, 15 Constantin Daicoviciu St., 400020 Cluj-Napoca, Romania

5. Faculty of Physics, Hanoi National University of Education, 136 Xuan Thuy, Cau Giay, Hanoi 100000, Vietnam

6. Institute of Geosciences, Federal University of Pará, Belém 66075-110, PA, Brazil

7. PPGCA, Universidade Federal do Amapá, Macapá 68902-280, AP, Brazil

Abstract

Herein, we carefully investigated the Fe3+ doping effects on the structure and electron distribution of Cr2O3 nanoparticles using X-ray diffraction analysis (XRD), maximum entropy method (MEM), and density functional theory (DFT) calculations. We showed that increasing the Fe doping induces an enlargement in the axial ratio of c/a, which is associated with an anisotropic expansion of the unit cell. We found that as Fe3+ replaces Cr in the Cr2O3 lattice, it caused a higher interaction between the metal 3d states and the oxygen 2p states, which led to a slight increase in the Cr/Fe–O1 bond length followed by an opposite effect for the Cr/Fe–O2 bonds. Our results also suggest that the excitations characterize a well-localized bandgap region from occupied Cr d to unoccupied Fe d states. The Cr2O3 and Fe-doped Cr2O3 nanoparticles behave as Mott–Hubbard insulators due to their band gap being in the d−d gap, and Cr 3d orbitals dominate the conduction band. These findings suggest that the magnitude and the character of the electronic density near the O atom bonds in Cr2O3 nanoparticles are modulated by the Cr–Cr distances until its stabilization at the induced quasi-equilibrium of the Cr2O3 lattice when the Fe3+ doping values reaches the saturation level range.

Funder

Conselho Nacional de Desenvolvimento Científico e Tecnológico-CNPq

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior-CAPES

Santander Bank through the Iberoamerican grants for Young Professors and Researchers

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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