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Understanding the electronic properties of BaTiO3 and Er3+ doped BaTiO3 films through confocal scanning microscopy and XPS: the role of oxygen vacancies.
Clabel H, J L; Awan, Iram T; Lozano, G; Pereira-da-Silva, M A; Romano, R A; Rivera, V A G; Ferreira, S O; Marega, E.
Affiliation
  • Clabel H JL; Physics Institute of São Carlos, University of São Paulo, P.O. Box 369, 13560-970, São Carlos, SP, Brazil. jclabel@ifsc.usp.br.
  • Awan IT; Physics Institute of São Carlos, University of São Paulo, P.O. Box 369, 13560-970, São Carlos, SP, Brazil. jclabel@ifsc.usp.br.
  • Lozano G; Physics Institute of São Carlos, University of São Paulo, P.O. Box 369, 13560-970, São Carlos, SP, Brazil. jclabel@ifsc.usp.br.
  • Pereira-da-Silva MA; Physics Institute of São Carlos, University of São Paulo, P.O. Box 369, 13560-970, São Carlos, SP, Brazil. jclabel@ifsc.usp.br and University Center Central Paulista, UNICEP, P.O. Box 13563-470, São Carlos, SP, Brazil.
  • Romano RA; Physics Institute of São Carlos, University of São Paulo, P.O. Box 369, 13560-970, São Carlos, SP, Brazil. jclabel@ifsc.usp.br.
  • Rivera VAG; Facultad de Ciencias Físicas, Universidad Nacional Mayor de San Marcos, UNMSM, Lima, Lima, Peru.
  • Ferreira SO; Departament of Physics, Federal University of Viçosa, UFV, P.O. Box 36570-901, Viçosa, MG, Brazil.
  • Marega E; Physics Institute of São Carlos, University of São Paulo, P.O. Box 369, 13560-970, São Carlos, SP, Brazil. jclabel@ifsc.usp.br.
Phys Chem Chem Phys ; 22(26): 15022-15034, 2020 Jul 08.
Article in En | MEDLINE | ID: mdl-32597431
ABSTRACT
Photonic and electronic properties exist inherently in ferroelectric barium titanate (BaTiO3); severe luminescence quenching also exists due to the insufficient confinement of excitons. In this sense, high optical emission can only be achieved by its chemical and structural modification. Thin BaTiO3 and ErBaTiO3 films were grown by the spin coating method on a glass substrate at room temperature. Self-trapping of excitons in the thin BaTiO3 film and its structural modification due to the doping with Er3+ ions (ErBaTiO3) are verified using scanning confocal fluorescence microscopy (SCFM), where self-trapping excitons never occured in its pure state. By thermal treatment and doping (BaTiO3 and ErBaTiO3) we obtained localization of the excitons, which would further induce lattice strain around the surface defects, to accommodate the self-trapped excitons. With such a self-trapped state, the structure of BaTiO3 generates broadband emission of several overlapping bands between 1.95 and 2.65 eV at room temperature, while the structure ErBaTiO3 showed defined emission bands at 2.24 and 2.35 eV, with very weak contributions of the emission due to the self-trapping state. The influence of the variation of the excitation wavelength using 1PE and 2PE on the emission bands of BaTiO3 and ErBaTiO3 is also investigated. The results of enhanced emission bands suggest a clear dependence of the emission intensity on the excitation energy, where a ∼3 fold enhancement in emission has been demonstrated under Er3+ (1.55 eV) excitation, which can be attributed to effective energy transfer between the Er3+ ions. As a result, it is concluded that the developed BaTiO3 and ErBaTiO3 can pave the way for future photonic devices.

Full text: 1 Database: MEDLINE Language: En Journal: Phys Chem Chem Phys Journal subject: BIOFISICA / QUIMICA Year: 2020 Type: Article Affiliation country: Brazil

Full text: 1 Database: MEDLINE Language: En Journal: Phys Chem Chem Phys Journal subject: BIOFISICA / QUIMICA Year: 2020 Type: Article Affiliation country: Brazil