Spin transport through graphene/molecules-based magnetic tunnel junctions

ORAL

Abstract

Spin transport through organic molecules is motivated by the ability to tune at the atomic scale the spin injection/detection properties. This property is barely achievable in inorganic systems and it is due to the possibility of designing molecules atoms by atoms. With this respsct, ferromagnetic metal/molecules interfaces has focused most of the attention.
A common issue remains the quality of such complex interfaces. Ferromagnetic metals like Co, Fe, Ni are transition metals and are easily oxidizable. The presence of oxygen atoms is known to completely modify the magnetic and electronic properties of magnetic surfaces.The recently proposed Ni/graphene electrodes for spintronics applications is very appealing due to their protected character. Moreover, graphene is more and more viewed as a good platform for the absorption of molecules.
In this talk, I will describe the fabrication process of magnetic tunnel junctions made of Ni/graphene/nitrobenzene molecules/Co/Au. I will especially detail the electrografting procedure to attach molecules over the grahene surface. I will then present the magnetotransport measurements performed at low temperatures. I will also discuss the bias voltage dependence of the magnetoresistance.

*"2DSPIN" from the Emergence program (City of Paris)

Presenters

  • Clement Barraud

    • MPQ, Université de Paris

Authors

  • Clement Barraud

    • MPQ, Université de Paris
  • Jacko Rastikian

    • MPQ, Université de Paris
  • Pascal Martin

    • MPQ, Université de Paris
  • Philippe Lafarge

    • MPQ, Université de Paris
  • Maria Luisa Della Rocca

    • MPQ, Université de Paris
  • Richard Mattana

    • UMR 137, CNRS
    • Unité Mixte de Physique CNRS/Thales
  • Pierre Seneor

    • Unite Mixte de Physique, CNRS, Thales, Univ. Paris-Sud, Université Paris Saclay, Palaiseau, France
    • UMR 137, Université Paris Saclay
    • Unité Mixte de Physique CNRS/Thales
  • Frédéric Petroff

    • UMR 137, CNRS
    • Unité Mixte de Physique CNRS/Thales
  • Bruno Dlubak

    • Unite Mixte de Physique, CNRS, Thales, Univ. Paris-Sud, Université Paris Saclay, Palaiseau, France
    • UMR 137, CNRS