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复杂氧化物异质结构中的载流子介导磁电效应

Carrier-mediated magnetoelectricity in complex oxide heterostructures.

作者信息

Rondinelli James M, Stengel Massimiliano, Spaldin Nicola A

机构信息

Materials Department, University of California, Santa Barbara, California 93106-5050, USA.

出版信息

Nat Nanotechnol. 2008 Jan;3(1):46-50. doi: 10.1038/nnano.2007.412. Epub 2007 Dec 16.

Abstract

Increasing demands for high-density, stable nanoscale memory elements, as well as fundamental discoveries in the field of spintronics, have led to renewed interest in exploring the coupling between magnetism and electric fields. Although conventional magnetoelectric routes often result in weak responses, there is considerable current research activity focused on identifying new mechanisms for magnetoelectric coupling. Here we demonstrate a linear magnetoelectric effect that arises from a carrier-mediated mechanism, and is a universal feature of the interface between a dielectric and a spin-polarized metal. Using first-principles density functional calculations, we illustrate this effect at the SrRuO3/SrTiO3 interface and describe its origin. To formally quantify the magnetic response of such an interface to an applied electric field, we introduce and define the concept of spin capacitance. In addition to its magnetoelectric and spin capacitive behaviour, the interface displays a spatial coexistence of magnetism and dielectric polarization, suggesting a route to a new type of interfacial multiferroic.

摘要

对高密度、稳定的纳米级存储元件需求的不断增加,以及自旋电子学领域的基础发现,引发了人们对探索磁场与电场之间耦合的新兴趣。尽管传统的磁电途径往往导致较弱的响应,但目前有大量研究活动致力于确定磁电耦合的新机制。在此,我们展示了一种由载流子介导机制产生的线性磁电效应,它是电介质与自旋极化金属之间界面的普遍特征。利用第一性原理密度泛函计算,我们在SrRuO3/SrTiO3界面上阐明了这种效应并描述了其起源。为了正式量化这种界面在施加电场时的磁响应,我们引入并定义了自旋电容的概念。除了其磁电和自旋电容行为外,该界面还呈现出磁性和介电极化的空间共存,这为新型界面多铁性材料指明了一条途径。

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