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通过铂中诱导的反常霍尔效应探测绝缘CrGeTe中的磁性

Probing Magnetism in Insulating CrGeTe by Induced Anomalous Hall Effect in Pt.

作者信息

Lohmann Mark, Su Tang, Niu Ben, Hou Yusheng, Alghamdi Mohammed, Aldosary Mohammed, Xing Wenyu, Zhong Jiangnan, Jia Shuang, Han Wei, Wu Ruqian, Cui Yong-Tao, Shi Jing

机构信息

Department of Physics and Astronomy , University of California , Riverside , California 92521 , United States.

International Center for Quantum Materials, School of Physics , Peking University , Beijing 100871 , P. R. China.

出版信息

Nano Lett. 2019 Apr 10;19(4):2397-2403. doi: 10.1021/acs.nanolett.8b05121. Epub 2019 Mar 11.

Abstract

Two-dimensional ferromagnet CrGeTe (CGT) is so resistive below its Curie temperature that probing its magnetism by electrical transport becomes extremely difficult. By forming heterostructures with Pt, however, we observe clear anomalous Hall effect (AHE) in 5 nm thick Pt deposited on thin (<50 nm) exfoliated flakes of CGT. The AHE hysteresis loops persist to ∼60 K, which matches well to the Curie temperature of CGT obtained from the bulk magnetization measurements. The slanted AHE loops with a narrow opening indicate magnetic domain formation, which is confirmed by low-temperature magnetic force microscopy (MFM) imaging. These results clearly demonstrate that CGT imprints its magnetization in the AHE signal of the Pt layer. Density functional theory calculations of CGT/Pt heterostructures suggest that the induced ferromagnetism in Pt may be primarily responsible for the observed AHE. Our results establish a powerful way of investigating magnetism in 2D insulating ferromagnets, which can potentially work for monolayer devices.

摘要

二维铁磁体CrGeTe(CGT)在其居里温度以下电阻极大,以至于通过电输运探测其磁性变得极为困难。然而,通过与Pt形成异质结构,我们在沉积于薄(<50 nm)的剥离CGT薄片上的5 nm厚Pt中观察到了清晰的反常霍尔效应(AHE)。AHE磁滞回线持续到约60 K,这与通过体磁化测量得到的CGT居里温度非常匹配。开口狭窄的倾斜AHE回线表明形成了磁畴,这通过低温磁力显微镜(MFM)成像得到了证实。这些结果清楚地表明,CGT在Pt层的AHE信号中留下了其磁化印记。CGT/Pt异质结构的密度泛函理论计算表明,Pt中诱导的铁磁性可能是观察到的AHE的主要原因。我们的结果建立了一种研究二维绝缘铁磁体磁性的有力方法,这可能对单层器件有效。

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