论文标题
二维材料中的磁性
Magnetoelectricity in two-dimensional materials
论文作者
论文摘要
由于最初分离了几层石墨烯,因此已经获得了大量二维原子晶体,涵盖了几乎所有已知的材料类型,包括金属,半导体,超导体,铁体和抗铁磁铁。这些进步增强了已经存在的二维材料,这些材料常规地通过散装 - 体积导体异质结构中的量子限制来实现。这篇综述着重于仍在积极寻求二维实现的材料类型:磁性。我们概述了当前的理论期望和实验进步,以制造低维版本的此类材料,这些版本可以用电荷磁化,并通过应用的磁场 - 不寻常的电磁特性,这些磁场可以用电气极化,这可能是各种有用应用的基础。使用磁性电荷在磁电介质中或附近产生的磁性单重孔场的范式示例来说明空间限制和磁电力之间的相互作用。出于讨论的目的,扩展了来自静电学的图像充电方法,以解决使用图像dyons(即具有电荷和磁性电荷的点对象)中磁性介质的磁电介质的边界值问题。我们讨论在薄宽度限制下产生的磁性诱导场的显着特征。
Since the initial isolation of few-layer graphene, a plethora of two-dimensional atomic crystals has become available, covering almost all known materials types including metals, semiconductors, superconductors, ferro- and antiferromagnets. These advances have augmented the already existing variety of two-dimensional materials that are routinely realized by quantum confinement in bulk-semiconductor heterostructures. This review focuses on the type of material for which two-dimensional realizations are still being actively sought: magnetoelectrics. We present an overview of current theoretical expectation and experimental progress towards fabricating low-dimensional versions of such materials that can be magnetized by electric charges and polarized electrically by an applied magnetic field - unusual electromagnetic properties that could be the basis for various useful applications. The interplay between spatial confinement and magnetoelectricity is illustrated using the paradigmatic example of magnetic-monopole fields generated by electric charges in or near magnetoelectric media. For the purpose of this discussion, the image-charge method familiar from electrostatics is extended to solve the boundary-value problem for a magnetoelectric medium in the finite-width slab geometry using image dyons, i.e., point objects having both electric and magnetic charges. We discuss salient features of the magnetoelectrically induced fields arising in the thin-width limit.