Semimetal Contacts to Monolayer Semiconductor: Weak Metalization as an Effective Mechanism to Schottky Barrier Lowering
Tong Su, Yueyan Li, Qianqian Wang, Weiwei Zhao, Liemao Cao, Yee Sin, Ang

TL;DR
This study uses first-principles calculations to explore semimetal contacts with monolayer TMDCs, revealing weak metalization and semimetal-induced gap states as effective mechanisms for lowering Schottky barriers and improving charge injection.
Contribution
It provides a comprehensive DFT analysis of semimetal/TMDC contacts, introducing a modified Schottky-Mott rule and highlighting the potential of Bi and Sb as contact materials.
Findings
Weak metalization leads to semimetal-induced gap states.
Sb contacts exhibit lower tunneling resistivity than Bi.
Semimetal contacts effectively reduce Schottky barrier heights.
Abstract
Recent experiment has uncovered semimetal bismuth (Bi) as an excellent electrical contact to monolayer MoS with ultralow contact resistance. The contact physics of the broader semimetal/monolayer-semiconductor family beyond Bi/MoS, however, remains largely unexplored thus far. Here we perform a comprehensive first-principle density functional theory investigation on the electrical contact properties between six archetypal two-dimensional (2D) transition metal dichalcogenide (TMDC) semiconductors, i.e. MoS, WS, MoSe, WSe, MoTe and WTe, and two representative types of semimetals, Bi and antimony (Sb). As Bi and Sb work functions energetically aligns well with the TMDC conduction band edge, Ohmic or nearly-Ohmic -type contacts are prevalent. The interlayer distance of semimetal/TMDC contacts are significantly larger than that of the metal/TMDC…
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Taxonomy
Topics2D Materials and Applications · Semiconductor materials and interfaces · Molecular Junctions and Nanostructures
