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手性晶格磁体中的场可调环形矩

Field-tunable toroidal moment in a chiral-lattice magnet.

作者信息

Ding Lei, Xu Xianghan, Jeschke Harald O, Bai Xiaojian, Feng Erxi, Alemayehu Admasu Solomon, Kim Jaewook, Huang Fei-Ting, Zhang Qiang, Ding Xiaxin, Harrison Neil, Zapf Vivien, Khomskii Daniel, Mazin Igor I, Cheong Sang-Wook, Cao Huibo

机构信息

Oak Ridge National Laboratory, Neutron Scattering Division, Oak Ridge, TN, USA.

Rutgers Center for Emergent Materials and Department of Physics and Astronomy, Piscataway, NJ, USA.

出版信息

Nat Commun. 2021 Sep 9;12(1):5339. doi: 10.1038/s41467-021-25657-6.

Abstract

Ferrotoroidal order, which represents a spontaneous arrangement of toroidal moments, has recently been found in a few linear magnetoelectric materials. However, tuning toroidal moments in these materials is challenging. Here, we report switching between ferritoroidal and ferrotoroidal phases by a small magnetic field, in a chiral triangular-lattice magnet BaCoSiO with tri-spin vortices. Upon applying a magnetic field, we observe multi-stair metamagnetic transitions, characterized by equidistant steps in the net magnetic and toroidal moments. This highly unusual ferri-ferroic order appears to come as a result of an unusual hierarchy of frustrated isotropic exchange couplings revealed by first principle calculations, and the antisymmetric exchange interactions driven by the structural chirality. In contrast to the previously known toroidal materials identified via a linear magnetoelectric effect, BaCoSiO is a qualitatively new multiferroic with an unusual coupling between several different orders, and opens up new avenues for realizing easily tunable toroidal orders.

摘要

铁环序,即环形矩的自发排列,最近在一些线性磁电材料中被发现。然而,在这些材料中调节环形矩具有挑战性。在此,我们报道了在手性三角晶格磁体BaCoSiO中,通过小磁场实现了铁环相和铁环序相之间的切换,该磁体具有三自旋涡旋。施加磁场时,我们观察到多级变磁转变,其特征是净磁矩和环形矩中存在等间距的台阶。这种高度不寻常的铁磁 - 铁电序似乎是由第一性原理计算揭示的受挫各向同性交换耦合的异常层次结构以及由结构手性驱动的反对称交换相互作用导致的。与之前通过线性磁电效应识别的环形材料不同,BaCoSiO是一种具有几种不同序之间异常耦合的定性新型多铁性材料,为实现易于调节的环形序开辟了新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/505e/8429646/bf341adc740f/41467_2021_25657_Fig1_HTML.jpg

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