Amini Mohammad, Fumega Adolfo O, González-Herrero Héctor, Vaňo Viliam, Kezilebieke Shawulienu, Lado Jose L, Liljeroth Peter
Department of Applied Physics, Aalto University, Aalto, FI-00076, Finland.
Departamento de Física de la Materia Condensada, Universidad Autónoma de Madrid, Madrid, E-28049, Spain.
Adv Mater. 2024 May;36(18):e2311342. doi: 10.1002/adma.202311342. Epub 2024 Feb 5.
Progress in layered van der Waals materials has resulted in the discovery of ferromagnetic and ferroelectric materials down to the monolayer limit. Recently, evidence of the first purely 2D multiferroic material was reported in monolayer NiI. However, probing multiferroicity with scattering-based and optical bulk techniques is challenging on 2D materials, and experiments on the atomic scale are needed to fully characterize the multiferroic order at the monolayer limit. Here, scanning tunneling microscopy (STM) supported by density functional theory (DFT) calculations is used to probe and characterize the multiferroic order in monolayer NiI. It is demonstrated that the type-II multiferroic order displayed by NiI, arising from the combination of a magnetic spin spiral order and a strong spin-orbit coupling, allows probing the multiferroic order in the STM experiments. Moreover, the magnetoelectric coupling of NiI is directly probed by external electric field manipulation of the multiferroic domains. The findings establish a novel point of view to analyze magnetoelectric effects at the microscopic level, paving the way toward engineering new multiferroic orders in van der Waals materials and their heterostructures.
层状范德华材料的进展使得人们发现了直至单层极限的铁磁和铁电材料。最近,在单层NiI中报道了首个纯二维多铁性材料的证据。然而,使用基于散射和光学体技术探测二维材料的多铁性具有挑战性,需要进行原子尺度的实验才能在单层极限下全面表征多铁性序。在此,利用密度泛函理论(DFT)计算支持的扫描隧道显微镜(STM)来探测和表征单层NiI中的多铁性序。结果表明,NiI所呈现的II型多铁性序源于磁自旋螺旋序和强自旋轨道耦合的结合,这使得在STM实验中能够探测多铁性序。此外,通过对多铁性畴进行外部电场操纵,直接探测了NiI的磁电耦合。这些发现为在微观层面分析磁电效应建立了新的视角,为在范德华材料及其异质结构中设计新的多铁性序铺平了道路。