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Particle size dependence of magnetization and phase transition near T-N in multiferroic BiFeO3

机译:多铁性BiFeO3中T-N附近磁化强度和相变的粒径依赖性

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We report results of a comprehensive study of the phase transition at T-N (similar to 643 K) as a function of particle size in multiferroic BiFeO3 system. We employed electrical, thermal, and temperature dependent x-ray diffraction studies in order to characterize the transition in a host of samples. We also carried out detailed magnetic measurements over a temperature regime of 2-300 K under a magnetic field of 100-10 000 Oe both on bulk and nanocrystalline systems. While in the bulk system a sharp endothermic peak at T-N together with a broad feature, ranging over nearly similar to 100 K (Delta T), could be observed in calorimetry, the nanoscale systems exhibit only the broad feature. The characteristic dielectric anomaly, expected at T-N, is found to occur both at T-O and T-N across Delta T in the bulk sample. The Maxwell-Wagner component due to interfaces between heterogenous regions with different conductivities is also present. The magnetic properties, measured at lower temperature, corroborate our observations in calorimetry. The metastability increases in the nanoscale BiFeO3 with divergence between zero-field cooled and field cooled magnetizations below similar to 100 K and faster magnetic relaxation. Interestingly, in nanoscale BiFeO3 one also observes finite coercivity at lower temperature, which points out that suitable design of particle size and shape may induce ferromagnetism. The inhomogeneous distribution of Bi/Fe ions and/or oxygen nonstoichiometry seems to be giving rise to broad features in thermal, magnetic as well as electrical responses. (c) 2006 American Institute of Physics.
机译:我们报告了在多铁性BiFeO3体系中T-N(类似于643 K)的相变作为粒径函数的综合研究结果。我们采用了电学、热学和温度相关的X射线衍射研究,以表征大量样品的转变。我们还在100-10 000 Oe的磁场下,在2-300 K的温度范围内对本体和纳米晶系统进行了详细的磁测量。虽然在量热法中可以观察到 T-N 处的尖锐吸热峰以及范围几乎相似的 100 K (Delta T) 的广泛特征,但纳米级系统仅表现出广泛的特征。在散装样品中,发现在T-N处预期的特征介电异常在T-O和T-N处同时发生,横跨Delta T。由于具有不同电导率的异质区域之间的界面,还存在麦克斯韦-瓦格纳分量。在较低温度下测量的磁性证实了我们在量热法中的观察结果。纳米级BiFeO3的亚稳态增加,零场冷却和场冷磁化强度之间的分歧类似于100 K,磁弛豫更快。有趣的是,在纳米级BiFeO3中,人们还观察到较低温度下的有限矫顽力,这表明适当的粒径和形状设计可能会引起铁磁性。Bi/Fe离子和/或氧非化学计量的不均匀分布似乎在热、磁和电响应方面产生了广泛的特征。(c) 2006年美国物理研究所。

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