Safaei Jazi Shadi, Faniayeu Ihar, Cichelero Rafael, Tzarouchis Dimitrios C, Asgari Mohammad Mahdi, Dmitriev Alexandre, Fan Shanhui, Asadchy Viktar
Department of Electronics and Nanoengineering, Aalto University, P.O. Box 15500, FI-00076, Aalto, Finland.
Department of Physics, University of Gothenburg, Gothenburg, 41296, Sweden.
Nat Commun. 2024 Feb 12;15(1):1293. doi: 10.1038/s41467-024-45225-y.
The nonreciprocal magnetoelectric effect, also known as the Tellegen effect, promises a number of groundbreaking phenomena connected to fundamental (e.g., electrodynamics of axion and relativistic matter) and applied physics (e.g., magnetless isolators). We propose a three-dimensional metamaterial with an isotropic and resonant Tellegen response in the visible frequency range. The metamaterial is formed by randomly oriented bi-material nanocylinders in a host medium. Each nanocylinder consists of a ferromagnet in a single-domain magnetic state and a high-permittivity dielectric operating near the magnetic Mie-type resonance. The proposed metamaterial requires no external magnetic bias and operates on the spontaneous magnetization of the nanocylinders. By leveraging the emerging magnetic Weyl semimetals, we further show how a giant bulk effective magnetoelectric effect can be achieved in a proposed metamaterial, exceeding that of natural materials by almost four orders of magnitude.
非互易磁电效应,也称为泰勒根效应,预示着许多与基础物理(如轴子和相对论物质的电动力学)和应用物理(如无磁隔离器)相关的开创性现象。我们提出了一种在可见光频率范围内具有各向同性和共振泰勒根响应的三维超材料。该超材料由主体介质中随机取向的双材料纳米圆柱体构成。每个纳米圆柱体由处于单畴磁状态的铁磁体和在磁米氏型共振附近工作的高介电常数电介质组成。所提出的超材料无需外部磁偏置,而是基于纳米圆柱体的自发磁化运行。通过利用新兴的磁外尔半金属,我们进一步展示了在所提出的超材料中如何实现巨大的体有效磁电效应,比天然材料的该效应高出近四个数量级。