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Enhancement of ferroelectric polarization in Sm-doped BaFe0.2Ti0.8O3ceramics
Anumeet Kaur1,2, Arkaprava Das3, Trilokchand L Kumavat4
1Department of Physics, Guru Nanak Dev University, Amritsar, Punjab 143005, India.
Abstract:
We show progressive enhancement in ferroelectric polarization with increasing Sm doping concentration along with retrieving tetragonality from the hexagonal paraelectric phase for Ba1-SmFe0.2Ti0.8O3(BTO) solid solution (x= 0, 0.10, 0.15, 0.20). The cooperative off-centering phenomenon due to octahedral distortion promotes interpolar clustering resulting in the formation of polar nano region causing an enhancement in saturation polarization and coercive field with Sm doping. Ferroelectric domain fringes observed in scanning and transmission electron microscopic images indicate the presence of ferroelectric ordering for the highest Sm-doped compound. Formation ofSmBa∘-FeTi'defect complex results in a reduction of oxygen vacancy (VO) defects which is observed from x-ray photoelectron spectroscopy. The reduction in VOimproves the domain switching by domain wall depinning and facilitates the increment in saturation polarization with Sm doping. The x-ray absorption spectra at TiL3,2edges show the increase oft2gegratio indicating enhanced Ti 3d-O 2porbital hybridization which is supported by DFT calculation. This DFT calculation also confers that the increment in Ti 3d/Sm 4d-O 2porbital hybridization further weakens the short-range repulsion between core orbitals and facilitates the enhancement of saturation polarization.
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