No Cover Image

Journal article 832 views 401 downloads

Origin of Weaker Fermi Level Pinning and Localized Interface States at Metal Silicide Schottky Barriers

Zhaofu Zhang, Yuzheng Guo Orcid Logo, John Robertson

The Journal of Physical Chemistry C, Volume: 124, Issue: 36, Pages: 19698 - 19703

Swansea University Author: Yuzheng Guo Orcid Logo

Abstract

The Schottky barriers of transition metal silicides on silicon are characterized by two anomalous features, a face dependence of Schottky barrier heights (SBHs) and a weaker than expected dependence of SBHs on work function or “weaker Fermi level pinning.” Density functional supercell calculations r...

Full description

Published in: The Journal of Physical Chemistry C
ISSN: 1932-7447 1932-7455
Published: American Chemical Society (ACS) 2020
Online Access: Check full text

URI: https://cronfa.swan.ac.uk/Record/cronfa55624
Tags: Add Tag
No Tags, Be the first to tag this record!
Abstract: The Schottky barriers of transition metal silicides on silicon are characterized by two anomalous features, a face dependence of Schottky barrier heights (SBHs) and a weaker than expected dependence of SBHs on work function or “weaker Fermi level pinning.” Density functional supercell calculations reported here find that these features arise from the occurrence of localized gap states at interfacial coordination defects, in addition to the usual metal-induced gap states (MIGSs), and these lead to pinning energies that increase sequentially across the Si gap from PtSi2 to YbSi2. The interfacial gap states vary in shape with face orientation and cause the unusual face-dependent SBHs. The localized interface defect states are a key missing addition to the MIGS model, which are needed to describe fully the interface bonding such as face orientation or coordination defects. This anomalous Fermi level pinning does not reduce gap state densities but could be used to better control SBHs by creating specific configurations with near band edge pinning energies, thus giving low contact resistances in highly scaled silicon devices or 2D semiconductors.
Keywords: Schottky barrier, Fermi level depinning, metal silicide, semiconductor contacts
College: Faculty of Science and Engineering
Issue: 36
Start Page: 19698
End Page: 19703