Département de Physique de la Matière Condensée, University of Geneva, 24 Quai Ernest-Ansermet, 1211 Genève 4, Switzerland.
Nat Mater. 2012 Jan 22;11(3):195-8. doi: 10.1038/nmat3224.
The wide spectrum of exotic properties exhibited by transition-metal oxides stems from the complex competition between several quantum interactions. The capacity to select the emergence of specific phases at will is nowadays extensively recognized as key for the design of diverse new devices with tailored functionalities. In this context, interface engineering in complex oxide heterostructures has developed into a flourishing field, enabling not only further tuning of the exceptional properties of these materials, but also giving access to hidden phases and emergent physical phenomena. Here we demonstrate how interfacial interactions can induce a complex magnetic structure in a non-magnetic material. We specifically show that exchange bias can unexpectedly emerge in heterostructures consisting of paramagnetic LaNiO3 (LNO) and ferromagnetic LaMnO3 (LMO). The observation of exchange bias in (111)-oriented LNO-LMO superlattices, manifested as a shift of the magnetization-field loop, not only implies the development of interface-induced magnetism in the paramagnetic LNO layers, but also provides us with a very subtle tool for probing the interfacial coupling between the LNO and LMO layers. First-principles calculations indicate that this interfacial interaction may give rise to an unusual spin order, resembling a spin-density wave, within the LNO layers.
过渡金属氧化物所表现出的广泛奇异性质源于几种量子相互作用之间的复杂竞争。现今,能够随心所欲地选择特定相的出现被广泛认为是设计具有定制功能的各种新型器件的关键。在这种背景下,复杂氧化物异质结构中的界面工程已经发展成为一个蓬勃发展的领域,不仅能够进一步调整这些材料的特殊性质,还能够获得隐藏的相和新兴的物理现象。在这里,我们展示了界面相互作用如何在非磁性材料中诱导出复杂的磁性结构。我们特别表明,在由顺磁 LaNiO3(LNO)和铁磁 LaMnO3(LMO)组成的异质结构中,可以出乎意料地出现交换偏置。在(111)取向的 LNO-LMO 超晶格中观察到的交换偏置表现为磁化场回线的移动,不仅意味着在顺磁 LNO 层中发展出了界面诱导的磁性,而且为我们提供了一个非常微妙的工具,用于探测 LNO 和 LMO 层之间的界面耦合。第一性原理计算表明,这种界面相互作用可能导致 LNO 层内出现一种异常的自旋序,类似于自旋密度波。