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The effects of elements doping on transport and thermoelectric properties of Sr3Ti2O7
Authors:RR Sun  XY Qin  LL Li  D Li  J Zhang  YS Zhang  CJ Tang
Institution:1. Department of Mathematics and Physics, Luoyang Institute of Science and Technology, Luoyang 471023, PR China;2. Key Laboratory of Materials Physics, Institute of Solid State Physics, Chinese Academy of Sciences, 230031 Hefei, PR China
Abstract:The Ruddlesden–Popper (RP) phase compounds (Sr0.95R0.05)3Ti2O7 (R=Er, Y, Dy, Gd, Eu, Sm, Nd and La) were prepared, and their transport and thermoelectric properties were investigated. The results indicate that high-T electrical resistivity ρ (300 K<T<1000 K) increases monotonically with temperature and basically has a relation ρTM, with M varying from 0.91 to 1.92 at temperatures T>~650 K, suggesting acoustic phonon scattering is dominant. At low temperatures (5 K<T<300 K), ρ for (Sr0.95R0.05)3Ti2O7 (R=Nd and La) decreases monotonously with decreasing temperature, whereas ρ for (Sr0.95R0.05)3Ti2O7 (R=Er, Y, Dy, Gd, Eu and Sm) decreases first, and then increases instead as T decreases to a critical temperature Tc. Moreover, electrical conductivity σT1/2 holds at lower temperatures, indicating that the electron–electron interaction caused by the presence of disorder dominates the transport process at the low temperatures. Besides, experiments show that at T<~400 K the lattice thermal conductivity of the doped compounds basically decreases with increase of the atomic mass of dopants. Generally, the figure of merit (ZT) at 1000 K increases first, and then decreases with the increase of the dopants' ionic radius, and the largest ZT is achieved in (Sr0.95Gd0.05)3Ti2O7 mainly owing to its lower lattice thermal conductivity.
Keywords:A  Oxides  D  Electrical properties  D  Transport properties
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