High-Temperature Synchrotron X-Ray Powder Diffraction Study of the Orthorhombic-Tetragonal Phase Transition in La0.63(Ti0.92,Nb0.08)O3 |
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Authors: | Roushown AliMasatomo Yashima Masahiko TanakaHideki Yoshioka Takeharu MoriSatoshi Sasaki |
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Affiliation: | a Department of Materials Science and Engineering, Interdisciplinary Graduate School of Science and Engineering, Tokyo Institute of Technology, 4259 Nagatsuta-cho, Midori-ku, Yokohama, 226-8502, Japanb Photon Factory, Institute of Materials Structure Science, High Energy Accelerator Research Organization, 1-1 Oho, Tsukuba, Ibaraki, 305-0801, Japanc Hyogo Prefectural Institute of Industrial Research, Suma, Kobe, 654-0037, Japand Materials and Structures Laboratory, Tokyo Institute of Technology, 4259 Nagatsuta-cho, Yokohama, 226-8503, Japan |
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Abstract: | The crystal structure of La0.63(Ti0.92,Nb0.08)O3 has been refined by the Rietveld analysis of CuKα X-ray powder diffraction data collected at 23°C. This material was confirmed to have an A-site deficient orthorhombic perovskite-type structure with double ideal perovskite ABO3 units along the c-axis (space group Pmmm, Z=2, a=3.86036(5) Å, b=3.87222(5) Å, c=7.82609(9) Å). Lattice parameters of the same sample have been investigated in situ in the temperature range from 25°C to 496°C by 1.37873(3) Å synchrotron X-ray powder diffraction. The synchrotron X-ray powder diffraction technique was found to be very powerful to determine precise lattice parameters around a phase transition temperature. This compound exhibited a reversible phase transition between the orthorhombic and tetragonal phases at around 370°C. (1) The lattice parameters increased continuously with temperature, while the b/a ratio decreased continuously with temperature and became unity at the orthorhombic-tetragonal transition point. (2) No hysteresis was observed in the lattice parameter values between heating and cooling. These results of (1) and (2) suggest that the orthorhombic-tetragonal phase transition is continuous. |
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Keywords: | synchrotron X-ray powder diffraction lattice parameters phase transition lanthanum titanate high temperature crystal structure ion conductor thermal expansion transformation. |
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