4.8 Article

Band-Structure Spin-Filtering in Vertical Spin Valves Based on Chemical Vapor Deposited WS2

Journal

ACS NANO
Volume 13, Issue 12, Pages 14468-14476

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.9b08178

Keywords

tungsten disulfide; 2D; semiconductor; spin filtering; spintronics; magnetic tunnel junction

Funding

  1. European Commission through H2020 Future and Emerging Technologies Graphene Flagship [696656, 785219]
  2. French National Research Agency (ANR) as part of the Investissements d'Avenir program (Labex NanoSaclay) [ANR-10-LABX-0035]
  3. National Fund for Scientific Research of Belgium [F.R.S.-FNRS]
  4. Research Concerted Action on 3D Nanoarchitecturing of 2D crystals [16/21-077]
  5. EPSRC [EP/M022250/1]
  6. EPSRC-Royal Society Fellowship Engagement Grant [EP/L003481/1]
  7. U.K. Royal Society [2017 RGF\EA\180090]
  8. Royal Society University Research Fellowship by the U.K. Royal Society
  9. EPSRC [EP/M022250/1, EP/L003481/1] Funding Source: UKRI

Ask authors/readers for more resources

We report on spin transport in WS2-based 2D -magnetic tunnel junctions (2D-MTJs), unveiling a band structure spin filtering effect specific to the transition metal dichalcogenides (TMDCs) family. WS2 mono-, bi-, and trilayers are derived by a chemical vapor deposition process and further characterized by Raman spectroscopy, atomic force microscopy (AFM), and photoluminescence spectroscopy. The WS2 layers are then integrated in complete Co/Al2O3/WS2/Co MTJ hybrid spin-valve structures. We make use of a tunnel Co/Al2O3 spin analyzer to probe the extracted spin-polarized current from the WS2/Co interface and its evolution as a function of WS2 layer thicknesses. For monolayer WS2, our technological approach enables the extraction of the largest spin signal reported for a TMDC-based spin valve, corresponding to a spin polarization of P-Co/WS2 = 12%. Interestingly, for bi- and trilayer WS2, the spin signal is reversed, which indicates a switch in the mechanism of interfacial spin extraction. With the support of ab initio calculations, we propose a model to address the experimentally measured inversion of the spin polarization based on the change in the WS2 band structure while going from monolayer (direct bandgap) to bilayer (indirect bandgap). These experiments illustrate the rich potential of the families of semiconducting 2D materials for the control of spin currents in 2D-MTJs.

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