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Article Dans Une Revue Scientific Reports Année : 2013

Direct observation of a highly spin-polarized organic spinterface at room temperature

P. Ohresser
  • Fonction : Auteur
F. Bertran
P. Le Fevre
A. Taleb-Ibrahimi

Résumé

Organic semiconductors constitute promising candidates toward large-scale electronic circuits that are entirely spintronics-driven. Toward this goal, tunneling magnetoresistance values above 300% at low temperature suggested the presence of highly spin-polarized device interfaces. However, such spinterfaces have not been observed directly, let alone at room temperature. Thanks to experiments and theory on the model spinterface between phthalocyanine molecules and a Co single crystal surface, we clearly evidence a highly efficient spinterface. Spin-polarised direct and inverse photoemission experiments reveal a high degree of spin polarisation at room temperature at this interface. We measured a magnetic moment on the molecule's nitrogen p orbitals, which substantiates an ab-initio theoretical description of highly spin-polarised charge conduction across the interface due to differing spinterface formation mechanisms in each spin channel. We propose, through this example, a recipe to engineer simple organic-inorganic interfaces with remarkable spintronic properties that can endure well above room temperature
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Dates et versions

hal-01572846 , version 1 (08-08-2017)

Identifiants

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F. Djeghloul, F. Ibrahim, M. Cantoni, M. Bowen, L. Joly, et al.. Direct observation of a highly spin-polarized organic spinterface at room temperature. Scientific Reports, 2013, 3, 7 p. ⟨10.1038/srep01272⟩. ⟨hal-01572846⟩
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