Tuning work functions to convert schottky to ohmic contacts in ZnMN2 (M = Si, Ge)-based van der waals interfaces

The Schottky barrier at the interface between two-dimensional (2D) semiconductors and metal electrodes critically limits the performance of nanoelectronic devices. Replacing conventional bulk metals with 2D metals in van der Waals contacts suppresses Fermi-level pinning, while work-function matching offers a route to Ohmic contact. Using first-principles calculations, we systematically investigate the contact properties of six van der Waals heterostructures composed of monolayer ZnSiN 2 or ZnGeN 2 and three 2D electrodes with distinct work functions: graphene (Gr), NbS 2 , and NbSe 2 . The global minimum-energy stacking configuration for each heterostructure is determined by optimizing the interlayer distance and in-plane displacement. Projected band structures confirm that ZnSiN 2 /NbS 2 , ZnGeN 2 /NbS 2 and ZnGeN 2 /NbSe 2 form p-type Ohmic contacts. Analysis of plane-averaged charge-density differences and electrostatic potentials reveals the mechanism: the high work function (>6.0 eV) of NbS 2 shifts the Fermi level toward the valence band maximum (VBM) of ZnMN 2 , giving rise to p-type Ohmic contacts. Among all systems, ZnSiN 2 /NbS 2 exhibits favorable Ohmic behavior and a relatively high ultraviolet absorption coefficient, highlighting its potential for high-performance photodetectors. This work demonstrates that work-function engineering effectively modulates the contact type in ZnMN 2 -based van der Waals heterostructures, providing theoretical guidance for electrode selection in this material system.

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Publication Details

Journal
Computational Materials Science
Published
2026-09-30
DOI
https://doi.org/10.1016/j.commatsci.2026.115118
Primary Topic
2D Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Tuning work functions to convert schottky to ohmic contacts in ZnMN2 (M = Si, Ge)-based van der waals interfaces

Shengli Zhang, Yuanfeng Ye, Zuyun Chen, Yang Hu et al.
Computational Materials Science
2D Materials and Applications
article

Tuning work functions to convert schottky to ohmic contacts in ZnMN2 (M = Si, Ge)-based van der waals interfaces

Shengli Zhang, Yuanfeng Ye, Zuyun Chen, Yang Hu, Xuemin Hu, Juan Pang
article en

Abstract

The Schottky barrier at the interface between two-dimensional (2D) semiconductors and metal electrodes critically limits the performance of nanoelectronic devices. Replacing conventional bulk metals with 2D metals in van der Waals contacts suppresses Fermi-level pinning, while work-function matching offers a route to Ohmic contact. Using first-principles calculations, we systematically investigate the contact properties of six van der Waals heterostructures composed of monolayer ZnSiN 2 or ZnGeN 2 and three 2D electrodes with distinct work functions: graphene (Gr), NbS 2 , and NbSe 2 . The global minimum-energy stacking configuration for each heterostructure is determined by optimizing the interlayer distance and in-plane displacement. Projected band structures confirm that ZnSiN 2 /NbS 2 , ZnGeN 2 /NbS 2 and ZnGeN 2 /NbSe 2 form p-type Ohmic contacts. Analysis of plane-averaged charge-density differences and electrostatic potentials reveals the mechanism: the high work function (>6.0 eV) of NbS 2 shifts the Fermi level toward the valence band maximum (VBM) of ZnMN 2 , giving rise to p-type Ohmic contacts. Among all systems, ZnSiN 2 /NbS 2 exhibits favorable Ohmic behavior and a relatively high ultraviolet absorption coefficient, highlighting its potential for high-performance photodetectors. This work demonstrates that work-function engineering effectively modulates the contact type in ZnMN 2 -based van der Waals heterostructures, providing theoretical guidance for electrode selection in this material system.

Computational Materials ScienceVol. 275
Jinling Institute of Technology (CN)
China Postdoctoral Science Foundation
Affordable and clean energy
Openalex Percentile: Top 27%
2D Materials and Applications
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Tuning work functions to convert schottky to ohmic contacts in ZnMN2 (M = Si, Ge)-based van der waals interfaces — Shengli Zhang, Yuanfeng Ye, et al. · Computational Materials Science (2026) | TGRS Research Map | TGRS