Single crystals of the layered perovskite GdBaCo_{2}O_{5+x} (GBCO) have been grown by the floating-zone method, and their transport, magnetic, and structural properties have been studied in detail over a wide range of oxygen contents. The obtained data are used to establish a rich phase diagram centered at the "parent'' compound GdBaCo_{2}O_{5.5} -- an insulator with Co ions in the 3+ state. An attractive feature of GBCO is that it allows a precise and continuous doping of CoO_{2} planes with either electrons or holes, spanning a wide range from the charge-ordered insulator at 50% electron doping (x=0) to the undoped band insulator (x=0.5), and further towards the heavily hole-doped metallic state. This continuous doping is clearly manifested in the behavior of thermoelectric power which exhibits a spectacular divergence with approaching x=0.5, where it reaches large absolute values and abruptly changes its sign. At low temperatures, the homogeneous distribution of doped carriers in GBCO becomes unstable, and both the magnetic and transport properties point to an intriguing nanoscopic phase separation. We also find that throughout the composition range the magnetic behavior in GBCO is governed by a delicate balance between ferromagnetic (FM) and antiferromagnetic (AF) interactions, which can be easily affected by temperature, doping, or magnetic field, bringing about FM-AF transitions and a giant magnetoresistance (MR) phenomenon. An exceptionally strong uniaxial anisotropy of the Co spins, which dramatically simplifies the possible spin arrangements, together with the possibility of continuous ambipolar doping turn GBCO into a model system for studying the competing magnetic interactions, nanoscopic phase separation and accompanying magnetoresistance phenomena.
翻译:以浮带法种植了层层的磁晶体 GdBaco ⁇ 2}O ⁇ 5+x} (GBCO) 的诱人特征是,它使得具有电子或洞的CoOO2}(GBCO) 的飞机能够精确和连续地下注,它们的运输、磁和结构特性在广泛的含氧内容中得到了详细研究。 获得的数据被用于在“ 母体复合GdBaco ⁇ 2}O ⁇ 5.5}” 建立丰富的阶段图, 以“ 母体” 为中心, 以3+状态中的共离子为导体。 GBCO的一个有吸引力的特征是, 它允许具有电子或洞洞的CoOO2 的机床精确和连续地涂料, 以电磁带定的电磁带变化范围很广, 将磁层的磁性分布到磁层的磁层变异变变变, 将磁层的磁变变变变变的磁变的磁性变变变, 也使磁变的磁变的磁变变的磁变的磁变变变的磁变的磁变变的磁变变的变的变的变的变的变的变的变的变的变的变的变的变的变。