Chakhalian J, Freeland J W, Habermeier H-U, Cristiani G, Khaliullin G, van Veenendaal M, Keimer B
University of Arkansas, Fayetteville, AR 72701, USA.
Science. 2007 Nov 16;318(5853):1114-7. doi: 10.1126/science.1149338. Epub 2007 Oct 11.
Orbital reconstructions and covalent bonding must be considered as important factors in the rational design of oxide heterostructures with engineered physical properties. We have investigated the interface between high-temperature superconducting (Y,Ca)Ba(2)Cu3O7 and metallic La(0.67)Ca(0.33)MnO3 by resonant x-ray spectroscopy. A charge of about -0.2 electron is transferred from Mn to Cu ions across the interface and induces a major reconstruction of the orbital occupation and orbital symmetry in the interfacial CuO2 layers. In particular, the Cu d(3z(2)-r(2)) orbital, which is fully occupied and electronically inactive in the bulk, is partially occupied at the interface. Supported by exact-diagonalization calculations, these data indicate the formation of a strong chemical bond between Cu and Mn atoms across the interface. Orbital reconstructions and associated covalent bonding are thus important factors in determining the physical properties of oxide heterostructures.
轨道重构和共价键合必须被视为合理设计具有工程物理性质的氧化物异质结构的重要因素。我们通过共振X射线光谱研究了高温超导(Y,Ca)Ba₂Cu₃O₇与金属La₀.₆₇Ca₀.₃₃MnO₃之间的界面。约 -0.2 个电子的电荷从 Mn 转移到界面处的 Cu 离子上,并在界面 CuO₂ 层中引起轨道占据和轨道对称性的重大重构。特别是,在体相中完全占据且电子非活性的 Cu d(3z² - r²) 轨道在界面处部分占据。在精确对角化计算的支持下,这些数据表明界面处 Cu 和 Mn 原子之间形成了强化学键。因此,轨道重构和相关的共价键合是决定氧化物异质结构物理性质的重要因素。