A Fabrication Process for Emerging Nanoelectronic Devices Based on Oxide Tunnel Junctions

Author:

Drouin Dominique12,Droulers Gabriel12,Labalette Marina12,Lee Sang Bruno12,Harvey-Collard Patrick3,Souifi Abdelkader4,Jeannot Simon5,Monfray Stephane5,Pioro-Ladriere Michel36,Ecoffey Serge12ORCID

Affiliation:

1. Institut Interdisciplinaire d’Innovation Technologique (3IT), Université de Sherbrooke, 3000 Boul. Université, Sherbrooke, QC, J1 K 0A5, Canada

2. Laboratoire Nanotechnologies Nanosystemes (LN2), CNRS UMI-3463, Université de Sherbrooke, 3000 Boul. Université, Sherbrooke, QC, J1 K 0A5, Canada

3. Physics Department, Université de Sherbrooke, 2500 Boul. Université, Sherbrooke, QC, J1 K 2R1, Canada

4. INL, INSA, UMR CNRS 5270, 7 Avenue Jean Capelle, 69621 Villeurbanne Cedex, France

5. STMicroelectronics, 38926 Crolles, France

6. Canadian Institute for Advanced Research, Toronto, ON, Canada M5G 1Z8

Abstract

We present a versatile nanodamascene process for the realization of low-power nanoelectronic devices with different oxide junctions. With this process we have fabricated metal/insulator/metal junctions, metallic single electron transistors, silicon tunnel field effect transistors, and planar resistive memories. These devices do exploit one or two nanometric-scale tunnel oxide junctions based on TiO2, SiO2, HfO2, Al2O3, or a combination of those. Because the nanodamascene technology involves processing temperatures lower than 300°C, this technology is fully compatible with CMOS back-end-of-line and is used for monolithic 3D integration.

Funder

Natural Sciences and Engineering Research Council of Canada

Publisher

Hindawi Limited

Subject

General Materials Science

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