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MgO(001) 衬底上超薄外延 NiFeO 薄膜的结构相关电子和磁性特性

Structure-Related Electronic and Magnetic Properties in Ultrathin Epitaxial NiFeO Films on MgO(001).

作者信息

Rodewald Jari, Thien Jannis, Ruwisch Kevin, Pohlmann Tobias, Hoppe Martin, Schmalhorst Jan, Küpper Karsten, Wollschläger Joachim

机构信息

Department of Physics, Osnabrück University, 49076 Osnabrück, Germany.

Deutsches Elektronen-Synchrotron (DESY), Photon Science, 22607 Hamburg, Germany.

出版信息

Nanomaterials (Basel). 2024 Apr 17;14(8):694. doi: 10.3390/nano14080694.

Abstract

Off-stoichiometric NiFeO ultrathin films (x < 2.1) with varying Ni content x and thickness 16 (±2) nm were grown on MgO(001) by reactive molecular beam epitaxy. Synchrotron-based high-resolution X-ray diffraction measurements reveal vertical compressive strain for all films, resulting from a lateral pseudomorphic adaption of the film to the substrate lattice without any strain relaxation. Complete crystallinity with smooth interfaces and surfaces is obtained independent of the Ni content x. For x < 1 an expected successive conversion from FeO to NiFeO is observed, whereas local transformation into NiO structures is observed for films with Ni content x > 1. However, angle-resolved hard X-ray photoelectron spectroscopy measurements indicate homogeneous cationic distributions without strictly separated phases independent of the Ni content, while X-ray absorption spectroscopy shows that also for x > 1, not all Fe2+ cations are substituted by Ni2+ cations. The ferrimagnetic behavior, as observed by superconducting quantum interference device magnetometry, is characterized by decreasing saturation magnetization due to the formation of antiferromagnetic NiO parts.

摘要

通过反应分子束外延在MgO(001)上生长了具有不同镍含量x(x < 2.1)和厚度为16(±2)nm的非化学计量比NiFeO超薄膜。基于同步加速器的高分辨率X射线衍射测量表明,所有薄膜都存在垂直压缩应变,这是由于薄膜在横向对衬底晶格的赝形适配而没有任何应变弛豫。无论镍含量x如何,都能获得具有光滑界面和表面的完全结晶性。对于x < 1,观察到从FeO到NiFeO的预期连续转变,而对于镍含量x > 1的薄膜,观察到局部转变为NiO结构。然而,角分辨硬X射线光电子能谱测量表明,与镍含量无关,阳离子分布均匀,没有严格分离的相,而X射线吸收光谱表明,即使对于x > 1,并非所有Fe2+阳离子都被Ni2+阳离子取代。通过超导量子干涉仪磁力测量观察到的亚铁磁行为的特征是,由于反铁磁NiO部分的形成,饱和磁化强度降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99c6/11053537/7e7da9feebce/nanomaterials-14-00694-g001.jpg

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