Interfacial work function mismatch driven giant tunneling electroresistance in Sc2CO2/Al2S3 van der Waals ferroelectric tunnel junctions

Two-dimensional van der Waals ferroelectric heterostructures hold great promise for high-performance ferroelectric tunnel junctions (FTJs) due to their atomic-scale thickness and switchable polarization. Here, we report a first-principles study of the Sc2CO2/Al2S3 heterostructure, which demonstrates a switchable semiconductor–metal transition driven by ferroelectric polarization reversal. This transition stems from a dramatic modulation of the interfacial work function difference, from 0.067 eV in the P↑↑ state to 3.24 eV in the P↓↓ state. The large work function mismatch induces strong interlayer charge transfer, closing the bandgap and enabling metallic conduction. Non-equilibrium Green's function transport calculations reveal that a corresponding FTJ achieves an ultrahigh tunneling electroresistance ratio of 6.70×105%. Our work identifies polarization-controlled interfacial work function engineering as a potent mechanism for achieving giant switching effects in low-dimensional ferroelectric devices.

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Publication Details

Journal
Applied Physics Letters
Published
2026-09-14
DOI
https://doi.org/10.1063/5.0343883
Primary Topic
2D Materials and Applications
Type
article
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Interfacial work function mismatch driven giant tunneling electroresistance in Sc2CO2/Al2S3 van der Waals ferroelectric tunnel junctions

Zhijian He, Shiying He, Daifeng Zou
Applied Physics Letters
2D Materials and Applications
article

Interfacial work function mismatch driven giant tunneling electroresistance in Sc2CO2/Al2S3 van der Waals ferroelectric tunnel junctions

Zhijian He, Shiying He, Daifeng Zou
article en

Abstract

Two-dimensional van der Waals ferroelectric heterostructures hold great promise for high-performance ferroelectric tunnel junctions (FTJs) due to their atomic-scale thickness and switchable polarization. Here, we report a first-principles study of the Sc2CO2/Al2S3 heterostructure, which demonstrates a switchable semiconductor–metal transition driven by ferroelectric polarization reversal. This transition stems from a dramatic modulation of the interfacial work function difference, from 0.067 eV in the P↑↑ state to 3.24 eV in the P↓↓ state. The large work function mismatch induces strong interlayer charge transfer, closing the bandgap and enabling metallic conduction. Non-equilibrium Green's function transport calculations reveal that a corresponding FTJ achieves an ultrahigh tunneling electroresistance ratio of 6.70×105%. Our work identifies polarization-controlled interfacial work function engineering as a potent mechanism for achieving giant switching effects in low-dimensional ferroelectric devices.

Applied Physics LettersVol. 129(11)
Hunan University of Science and Technology (CN), Beijing Normal University (CN), Anyang Normal University (CN)
Openalex Percentile: Top 24%
2D Materials and Applications
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