High pressure effects on ferroelectric tetragonal phase in BaTi1−xFexO3 (x=1%)

Author:

Tran T. A.1,Tran T. K. C.1,Nguyen L. V. T.1,Khan D. T.2ORCID,Truong-Son L. V.2,Thao L. T. P.2,Truong V. C.3,Thanh-Nghiem N.4,Phuc H. T.5,Jabarov S. H.6,Tien D. P. T.7

Affiliation:

1. Department of Physics, Ho Chi Minh City University of Technology and Education, Ho Chi Minh 700000, Vietnam

2. University of Science and Education, The University of Da Nang, Da Nang 550000, Vietnam

3. Quang Ninh High School, Quang Binh 470000, Vietnam

4. Graduate University of Science and Technology, Vietnam Academy of Science and Technology, Ha Noi 100000, Vietnam

5. Institute of Research and Development, Duy Tan University, Laboratory Center, Duy Tan University Da Nang 550000, Vietnam

6. Institute of Radiation Problems, Azerbaijan National Academy of Sciences, Baku 1143, Azerbaijan

7. Nhatrang Institute of Technology Research and Application, Vietnam Academy of Science and Technology, Nha Trang 650000, Vietnam

Abstract

The pressure-driven phase transformation in polycrystalline BaTi[Formula: see text]FexO3 ([Formula: see text]%), synthesized by a solid-state reaction method, was investigated using synchrotron X-ray diffraction and Raman spectroscopy. All measurements were performed at room temperature within a large pressure range up to 36.5 GPa. The results clearly demonstrate a phase transformation from the ferroelectric tetragonal structure of P4mm symmetry to the paraelectric cubic structure of Pm-3m symmetry in the studied sample at the pressure of about 18 GPa. This phase transformation pressure is much higher than those previously reported for BaTiO3-based systems, indicating the stabilization of the ferroelectric phase by doping 1% Fe into BaTiO3. Feature modes of the tetragonal phase still persist while some new modes appear in the Raman spectra at pressures above 18 GPa. This is probably due to accumulated stress and/or local microscopic disorders in the sample, which are associated with the displacement of the Ti atoms along unit-cell diagonals.

Funder

Ho Chi Minh City University of Technology and Education

Publisher

World Scientific Pub Co Pte Ltd

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

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