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Tunable metal-insulator transition Rashba effect and Weyl Fermions in a relativistic charge-ordered ferroelectric oxide

机译:相对论电荷有序铁电氧化物中的可调谐金属-绝缘体转变Rashba效应和Weyl费米子

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摘要

Controllable metal–insulator transitions (MIT), Rashba–Dresselhaus (RD) spin splitting, and Weyl semimetals are promising schemes for realizing processing devices. Complex oxides are a desirable materials platform for such devices, as they host delicate and tunable charge, spin, orbital, and lattice degrees of freedoms. Here, using first-principles calculations and symmetry analysis, we identify an electric-field tunable MIT, RD effect, and Weyl semimetal in a known, charge-ordered, and polar relativistic oxide Ag2BiO3 at room temperature. Remarkably, a centrosymmetric BiO6 octahedral-breathing distortion induces a sizable spontaneous ferroelectric polarization through Bi3+/Bi5+ charge disproportionation, which stabilizes simultaneously the insulating phase. The continuous attenuation of the Bi3+/Bi5+ disproportionation obtained by applying an external electric field reduces the band gap and RD spin splitting and drives the phase transition from a ferroelectric RD insulator to a paraelectric Dirac semimetal, through a topological Weyl semimetal intermediate state. These findings suggest that Ag2BiO3 is a promising material for spin-orbitonic applications.
机译:可控的金属-绝缘体转变(MIT),Rashba-Dresselhaus(RD)自旋分裂和Weyl半金属是实现加工设备的有前途的方案。复合氧化物是此类器件的理想材料平台,因为它们具有微妙且可调的电荷,自旋,轨道和晶格自由度。在这里,使用第一性原理计算和对称性分析,我们在室温下以已知的,带电荷的极性相对论性氧化物Ag2BiO3识别了电场可调的MIT,RD效应和Weyl半金属。值得注意的是,中心对称的BiO6八面体呼吸畸变通过Bi 3 + / Bi 5 + 电荷歧化引起相当大的自发铁电极化,同时稳定了绝缘相。通过施加外部电场获得的Bi 3 + / Bi 5 + 歧化的连续衰减会减小带隙和RD自旋分裂并驱动铁电体的相变RD绝缘体通过拓扑Weyl半金属中间态转变为顺电Dirac半金属。这些发现表明,Ag 2 BiO 3是用于自旋轨道应用的有前途的材料。

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