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莫特绝缘体与能带绝缘体界面处的电子重构

Electronic reconstruction at an interface between a Mott insulator and a band insulator.

作者信息

Okamoto Satoshi, Millis Andrew J

机构信息

Department of Physics, Columbia University 538 West 120th Street, New York, New York 10027, USA.

出版信息

Nature. 2004 Apr 8;428(6983):630-3. doi: 10.1038/nature02450.

Abstract

Surface science is an important and well-established branch of materials science involving the study of changes in material properties near a surface or interface. A fundamental issue has been atomic reconstruction: how the surface lattice symmetry differs from the bulk. 'Correlated-electron compounds' are materials in which strong electron-electron and electron-lattice interactions produce new electronic phases, including interaction-induced (Mott) insulators, many forms of spin, charge and orbital ordering, and (presumably) high-transition-temperature superconductivity. Here we propose that the fundamental issue for the new field of correlated-electron surface/interface science is 'electronic reconstruction': how does the surface/interface electronic phase differ from that in the bulk? As a step towards a general understanding of such phenomena, we present a theoretical study of an interface between a strongly correlated Mott insulator and a band insulator. We find dramatic interface-induced electronic reconstructions: in wide parameter ranges, the near-interface region is metallic and ferromagnetic, whereas the bulk phase on either side is insulating and antiferromagnetic. Extending the analysis to a wider range of interfaces and surfaces is a fundamental scientific challenge and may lead to new applications for correlated electron materials.

摘要

表面科学是材料科学中一个重要且成熟的分支,涉及对材料表面或界面附近性质变化的研究。一个基本问题是原子重构:表面晶格对称性如何与体相不同。“关联电子化合物”是这样一类材料,其中强电子 - 电子和电子 - 晶格相互作用产生新的电子相,包括相互作用诱导的(莫特)绝缘体、多种形式的自旋、电荷和轨道有序,以及(可能)高温超导性。在此我们提出,关联电子表面/界面科学新领域的基本问题是“电子重构”:表面/界面电子相与体相中的电子相有何不同?作为迈向对这类现象全面理解的一步,我们对强关联莫特绝缘体与能带绝缘体之间的界面进行了理论研究。我们发现了显著的界面诱导电子重构:在很宽的参数范围内,近界面区域是金属性且铁磁性的,而两侧的体相是绝缘且反铁磁性的。将分析扩展到更广泛的界面和表面是一项基本的科学挑战,并且可能会为关联电子材料带来新的应用。

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