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'Ferroelectric' metals reexamined: fundamental mechanisms and design considerations for new materials

机译:重新检查“铁电”金属:新材料的基本机理和设计考虑

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The recent observation of a ferroelectric-like structural transition in metallic LiOsO3 has generated a flurry of interest in the properties of polar metals. Such materials are thought to be rare because free electrons screen out the long-range electrostatic forces that favor a polar structure with a dipole moment in every unit cell. In this work, we question whether long-range electrostatic forces are always the most important ingredient in driving polar distortions. We use crystal chemical models, in combination with first-principles Density Functional Theory calculations, to explore the mechanisms of inversion-symmetry breaking in LiOsO3 and both insulating and electron-doped ATiO(3) perovskites, A = Ba, Sr, Ca. Although electrostatic forces do play a significant role in driving the polar instability of BaTiO3 (which is suppressed under electron doping), the polar phases of CaTiO3 and LiOsO3 emerge through a mechanism driven by local bonding preferences and this mechanism is 'resistant' to the presence of charge carriers. Hence, our results suggest that there is no fundamental incompatibility between metallicity and polar distortions. We use the insights gained from our calculations to suggest design principles for new polar metals and promising avenues for further research.
机译:最近在金属LiOsO3中观察到类似铁电结构转变,引起了人们对极性金属性能的关注。这种材料被认为是稀有的,因为自由电子屏蔽了长距离静电力,该静电力在每个晶胞中都具有偶极矩的极性结构。在这项工作中,我们质疑远程静电力是否始终是驱动极性失真的最重要因素。我们将晶体化学模型与第一性原理密度泛函理论相结合,以探索LiOsO3以及绝缘和电子掺杂的ATiO(3)钙钛矿(A = Ba,Sr,Ca)的反对称断裂机理。尽管静电力在驱动BaTiO3的极性不稳定性方面确实起着重要作用(在电子掺杂中被抑制),但CaTiO3和LiOsO3的极性相通过局部键合偏好机制而出现,并且这种机制“抵抗”了存在的电荷载体。因此,我们的结果表明,金属性和极性变形之间不存在基本的不兼容性。我们使用从计算中获得的见解来建议新型极性金属的设计原理以及有希望进一步研究的途径。

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