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CrTe薄片中直至原子级薄层的二维铁磁性。

Two-dimensional ferromagnetism in CrTe flakes down to atomically thin layers.

作者信息

Wang Mingshan, Kang Lixing, Su Jianwei, Zhang Luman, Dai Hongwei, Cheng Hui, Han Xiaotao, Zhai Tianyou, Liu Zheng, Han Junbo

机构信息

Wuhan National High Magnetic Field Center and Department of Physics, Huazhong University of Science and Technology (HUST), Wuhan 430074, China.

出版信息

Nanoscale. 2020 Aug 21;12(31):16427-16432. doi: 10.1039/d0nr04108d. Epub 2020 Jul 30.

Abstract

Two-dimensional (2D) ferromagnetism has attracted intense attention as it provides a platform for the investigation of fundamental physics and the emerged devices. Recently, the discovery of intrinsic 2D ferromagnet has enabled researchers to fabricate ultrathin devices, which can be controlled by external fields. Nevertheless, 2D ferromagnetic materials are mostly obtained by mechanical exfoliation methods with uncontrollable size and thickness, which make the device fabrication processes time-consuming and difficult to expand in industries. Therefore, the development of a controllable fabrication process for the synthesis of 2D intrinsic magnetic materials is necessary. In this study, a new 2D ferromagnet, chromium tellurium (CrTe), was successfully synthesized by the chemical vapor deposition (CVD) method, and the magnetism was studied by the magneto-optical Kerr effect (MOKE) technique. The results demonstrated that CrTe flakes exhibit hard magnetism with strong perpendicular anisotropy. As the thickness varies from 45 nm to 11 nm, the hard magnetism sustains quite well, with the Curie temperature T decreasing from 205 K to 140 K. Our study presents a new ultrathin hard magnetic material, which has the potential to be fabricated and applied in spintronic devices massively.

摘要

二维(2D)铁磁性因其为基础物理研究和新兴器件提供了一个平台而备受关注。最近,本征二维铁磁体的发现使研究人员能够制造出可由外部磁场控制的超薄器件。然而,二维铁磁材料大多是通过机械剥离法获得的,其尺寸和厚度无法控制,这使得器件制造过程耗时且难以在工业上扩大规模。因此,开发一种可控的制备工艺来合成二维本征磁性材料是必要的。在本研究中,通过化学气相沉积(CVD)法成功合成了一种新型二维铁磁体碲化铬(CrTe),并采用磁光克尔效应(MOKE)技术对其磁性进行了研究。结果表明,CrTe薄片表现出具有强垂直各向异性的硬磁性。当厚度从45nm变化到11nm时,硬磁性保持得相当好,居里温度T从205K降至140K。我们的研究提出了一种新型超薄硬磁材料,它有潜力被大量制造并应用于自旋电子器件中。

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