In this work, the solid solution of ((K0.5Na0.5)(1-x)Li-x)NbO3 ceramics with x=0.03, 0.04, 0.05, 0.06 and 0.07 was prepared by a conventional mixed-oxide and solid-state sintering method. The structural phase formation and microstructure were characterized by X-ray diffraction technique and scanning electron microscopy. The ceramics were identified by XRD as a single-phase perovskite structure with symmetry gradually changing from orthorhombic to tetragonal. The grain size and the optimum density of the sintered ceramics were noticeably compositional-dependent. The dielectric properties of the ((K0.5Na0.5)(1-x)Li-x)NbO3 ceramics under the uniaxial compressive stress were observed at stress up to 180 MPa. The results showed that the dielectric constant and the dielectric loss tangent increased with applied stress. The change in the dielectric properties with stress was seen to depend on the composition and grain size. The observations were interpreted in terms of the intrinsic and extrinsic contributions to the changes in dielectric properties upon the applied compressive stress. (C) 2011 Elsevier B.V. All rights reserved.
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Material Science and Engineering Institute,Changchun University of Science and TechnologyMaterial Science and Engineering Institute,Changchun University of Science and Technology
姜珊
王炫明
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Beijing University of Posts and TelecommunicationsMaterial Science and Engineering Institute,Changchun University of Science and Technology
王炫明
李佳宇
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China Building Materials AcademyMaterial Science and Engineering Institute,Changchun University of Science and Technology
李佳宇
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张勇
郑涛
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Material Science and Engineering Institute,Changchun University of Science and TechnologyMaterial Science and Engineering Institute,Changchun University of Science and Technology
郑涛
吕景文
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Material Science and Engineering Institute,Changchun University of Science and TechnologyMaterial Science and Engineering Institute,Changchun University of Science and Technology
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N.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, RussiaN.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russia
Politova, E.D.
Kaleva, G.M.
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N.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, RussiaN.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russia
Kaleva, G.M.
Mosunov, A.V.
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Faculty of Chemistry, Lomonosov Moscow State University, Moscow, RussiaN.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russia
Mosunov, A.V.
Sadovskaya, N.V.
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Institute of Crystallography, Federal Research Center Crystallography and Photonics, Russian Academy of Sciences, Moscow, RussiaN.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russia
Sadovskaya, N.V.
Fortalnova, E.A.
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Peoples’ Friendship University of Russia, RUDN University, Moscow, RussiaN.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russia
Fortalnova, E.A.
Shur, V. Ya.
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School of Natural Sciences and Mathematics, Ural Federal University, Ekaterinburg, RussiaN.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russia
Shur, V. Ya.
Ushakov, A.D.
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School of Natural Sciences and Mathematics, Ural Federal University, Ekaterinburg, RussiaN.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russia
Ushakov, A.D.
Faizullin, M.Z.
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Institute of Thermal Physics, Ural Branch RAS, Ekaterinburg, RussiaN.N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, Moscow, Russia