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首页> 外文期刊>Low temperature physics: Simultaneous Russian - English publication >Magnetic and transport properties driven by lattice strain in La{sub}0.7Ca{sub}0.3MnO{sub}3/BaTiO{sub}3 and La{sub}0.7Sr{sub}0.3MnO{sub}3/BaTiO{sub}3 bilayer films
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Magnetic and transport properties driven by lattice strain in La{sub}0.7Ca{sub}0.3MnO{sub}3/BaTiO{sub}3 and La{sub}0.7Sr{sub}0.3MnO{sub}3/BaTiO{sub}3 bilayer films

机译:La {sub} 0.7Ca {sub} 0.3MnO {sub} 3 / BaTiO {sub} 3和La {sub} 0.7Sr {sub} 0.3MnO {sub} 3 / BaTiO {sub}的晶格应变驱动的磁和输运性质} 3部双层电影

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摘要

The microstructure and the magnetic and transport properties of La{sub}0.7Ca{sub}0.3MnO{sub}3 and La{sub}0.7Sr{sub}0.3MnO{sub}3 films deposited on a BaTiO{sub}3 layer (LCMO/BTO and LSMO/BTO) and on a LaAlO{sub}3 (001) single crystal (LCMO/LAO and LSMO/LAO) by rf-magnetron sputtering using "soft" (or powder) targets are investigated. The films grown on BTO demonstrate biaxial tensile in-plane and compressive out-of-plane strains, while the films grown on LAO, in contrast, manifest compressive in-plane and tensile out-of-plane strains. The films with biaxial tensile in-plane lattice strain undergo the magnetic transition at a higher temperature than that for the biaxial compressive case. This argues that the Mn-O-Mn bond-angle variation, controlled by the lattice strain, plays a more important role in the formation of the spin ordering than the attendant modification of the Mn-O bond length. It is shown that the magnetic inhomogeneity, expressed by a significant difference between the field-cooled and zero-field-cooled temperature-dependent magnetization, has a metallurgical rather than an electronic nature, and is controlled by the crystal lattice distortion and the microstructure defects. The observed enhancement of the magnetoresis-tance effect in the LSMO/BTO bilayer at room temperature makes this object greatly beneficial in the development of new hybrid ferromagnetic/ferroelectric devices.
机译:沉积在BaTiO {sub} 3层上的La {sub} 0.7Ca {sub} 0.3MnO {sub} 3和La {sub} 0.7Sr {sub} 0.3MnO {sub} 3薄膜的微观结构以及磁学和输运性质(LCMO / BTO和LSMO / BTO)以及在LaAlO {sub} 3(001)上的单晶(LCMO / LAO和LSMO / LAO)通过使用“软”(或粉末)靶的射频磁控溅射进行了研究。在BTO上生长的薄膜表现出双轴拉伸面内和压缩面外应变,而在LAO上生长的薄膜则表现出压缩面内和拉伸面外应变。具有双轴拉伸面内晶格应变的膜在比双轴压缩情况下更高的温度下经历磁转变。这表明,受晶格应变控制的Mn-O-Mn键角变化比自旋的Mn-O键长变化更重要。结果表明,磁场不均匀性由场致冷和零场致冷的随温度变化的磁化强度之间的显着差异表示,具有冶金学而不是电子学性质,并且受晶格畸变和微观结构缺陷的控制。在室温下观察到的LSMO / BTO双层中磁阻效应的增强,使得该对象在新型混合铁磁/铁电器件的开发中大有裨益。

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