4.8 Article

Noncollinear Magnetic Order in Two-Dimensional NiBr2 Films Grown on Au(111)

期刊

ACS NANO
卷 15, 期 9, 页码 14985-14995

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c05221

关键词

2D metal dihalide; molecular beam epitaxy; van der Waals material; semiconductor; 2D magnetism

资金

  1. Austrian Science Fund (FWF) under the Erwin Schrodinger fellowship agreement [J4395-N]
  2. MPC Foundation
  3. Spanish AEI [PID2019-107338RB-C6, RTI-2018-095303-C53]
  4. Spanish AEI (Maria de Maeztu Units of Excellence Programme) [MDM-2016-0618]
  5. European Union (EU) through Horizon 2020 (SUPERTED Grant) [800923]
  6. Interred POCTEFA V-A Spain/France/Andorra Program [EFA 194/16/TNSI]
  7. Basque Government (GV/EJ) [IT-1255-19]
  8. European Regional Development Fund
  9. MINECO [FIS2016-78591-C3-2-R]
  10. FLAG-ERA Grant [PCI2019-111908-2]
  11. Austrian Science Fund (FWF) [J4395] Funding Source: Austrian Science Fund (FWF)

向作者/读者索取更多资源

Metal dihalides, such as NiBr2, exhibit promising semiconducting and magnetic behavior on Au(111) substrates, showing potential for applications in tunneling junctions and low-dimensional devices. Experiments using various techniques revealed competing layer structures of NiBr2 at the interface, with a magnetically ordered state below 27K attributed to a non-collinear magnetic structure in the single layer.
Metal halides are a class of layered materials with promising electronic and magnetic properties persisting down to the two-dimensional limit. While most recent studies focused on the trihalide components of this family, the rather unexplored metal dihalides are also van der Waals layered systems with distinctive magnetic properties. Here we show that the dihalide NiBr2 grows epitaxially on a Au(111) substrate and exhibits semiconducting and magnetic behavior starting from a single layer. Through a combination of a low-temperature scanning-tunneling microscopy, low-energy electron diffraction, X-ray photoelectron spectroscopy, and photoemission electron microscopy, we identify two competing layer structures of NiBr2 coexisting at the interface and a stoichiometrically pure layer-by-layer growth beyond. Interestingly, X-ray absorption spectroscopy measurements revealed a magnetically ordered state below 27 K with in-plane magnetic anisotropy and zero-remanence in the single layer of NiBr2/Au(111), which we attribute to a noncollinear magnetic structure. The combination of such two-dimensional magnetic order with the semiconducting behavior down to the 2D limit offers the attractive perspective of using these films as ultrathin crystalline barriers in tunneling junctions and low-dimensional devices.

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