Spin‐Orbit Readout Using Thin Films of Topological Insulator Sb2Te3 Deposited by Industrial Magnetron Sputtering

Author:

Teresi Salvatore1ORCID,Sebe Nicolas1ORCID,Patterson Jessy2,Frottier Théo1,Kandazoglou Aurélie1,Noël Paul3ORCID,Sgarro Paolo1,Térébénec Damien2,Bernier Nicolas2,Hippert Françoise4ORCID,Attané Jean‐Philippe1ORCID,Vila Laurent1ORCID,Noé Pierre2ORCID,Cosset‐Chéneau Maxen1ORCID

Affiliation:

1. CEA CNRS INP‐G Spintec Université Grenoble Alpes F‐38054 Grenoble France

2. CEA, LETI Université Grenoble Alpes F‐38000 Grenoble France

3. Department of Materials ETH Zurich CH‐8093 Zurich Switzerland

4. CNRS Grenoble INP LMGP Université Grenoble Alpes F‐38000 Grenoble France

Abstract

AbstractDriving a spin‐logic circuit requires the production of a large output signal by spin‐charge interconversion in spin‐orbit readout devices. This should be possible by using topological insulators, which are known for their high spin‐charge interconversion efficiency. However, high‐quality topological insulators have so far only been obtained on a small scale, or with large scale deposition techniques that are not compatible with conventional industrial deposition processes. The nanopatterning and electrical spin injection into these materials have also proven difficult due to their fragile structure and low spin conductance. The fabrication of a spin‐orbit readout device from the topological insulator Sb2Te3 deposited by large‐scale industrial magnetron sputtering on SiO2 is presented. Despite a modification of the Sb2Te3 layer structural properties during the device nanofabrication, a sizeable output voltage is measured that can be unambiguously ascribed to a spin‐charge interconversion process. The results pave the way for the integration of layered van der Waals materials in spin‐logic devices.

Funder

Institut Universitaire de France

Agence Nationale de la Recherche

Horizon 2020 Framework Programme

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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