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Multiferroic Phases and Transitions in Ferroelectric Lead Titanate Nanodots

机译:铁电钛酸铅纳米点中的多铁相和跃迁

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摘要

Discovery of novel phases and their associated transitions in low-dimensional nanoscale systems is of central interest as the origin of emergent phenomena and new device paradigms. Although typical ferroelectrics such as PbTiO3 exhibit diverse phase transition sequences, the conventional incompatible mechanisms of ferroelectricity and magnetism keep them as simply nonmagnetic phases, despite the immense practical prospective of multiferroics in novel functional devices. Here, we demonstrate using density function theory that PbTiO3 nanodots exhibit unconventional multiferroic phase transitions. The nanosize and nonstoichiometric effects intrinsic to nanodots bring about the coexistence of ferromagnetism with the host electric polarization, mediated by the termination and surface morphology. We also predict the key features of the size-dependent phase diagram of nanodots that involve a rich sequence of ferroelectric-multiferroic-ferromagneticonmagnetic (FE-MF-FM/NM) multiferroic phase transitions. The present work thus provides an avenue to realizing multiferroics and multifunctional oxides in low-dimensional systems.
机译:在低维纳米级系统中发现新颖的相及其相关的跃迁,作为新兴现象和新设备范例的起源,已引起人们的极大关注。尽管典型的铁电体(例如PbTiO3)表现出不同的相变序列,但是尽管新型功能器件中存在多铁磁体的巨大实际应用前景,但铁电和磁性的传统不兼容机制仍将它们简单地保持为非磁性相。在这里,我们证明使用密度函数理论,PbTiO3纳米点表现出非常规的多铁性相变。纳米点固有的纳米尺寸和非化学计量效应导致铁磁性与主体电极化的共存,该极化由终止和表面形态介导。我们还预测了纳米点的尺寸相关相图的关键特征,这些点涉及到铁电-多铁-铁磁性/非磁性(FE-MF-FM / NM)多铁相变的丰富序列。因此,本发明提供了在低维系统中实现多铁和多功能氧化物的途径。

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