Interface-Engineered Weak Fermi-Level Pinning and Spin-Dependent Schottky Barriers in M/LaBr2 (M = Ag, Co, Cu, Ni) Heterojunctions for Multifunctional Spintronics

Abstract Metal-induced gap states (MIGS) and Fermi-level pinning (FLP) are major obstacles to achieving optimal spin injection efficiency at metal/magnetic semiconductor interfaces. This study demonstrates that integrating the transition metals (Ag, Co, Cu, and Ni) via van der Waals interactions with the two-dimensional bipolar magnetic semiconductor monolayer LaBr2 effectively suppresses these detrimental interfacial effects. The weak interlayer orbital hybridization drastically restrains MIGS generation and yields nearly ideal FLP with a pinning factor S ≈ 0.99, approaching the ideal Schottky–Mott limit. This high-quality interface preserves the intrinsic spin-split band structure of LaBr2, facilitating strongly spin-dependent Schottky barriers. Particularly, the Ni/LaBr2 junction exhibits a near-Ohmic contact for spin-up holes (0.03 eV barrier) and a Schottky barrier for spin-down electrons (0.21 eV barrier), enabling near-unity spin-filtering efficiency. Leveraging this asymmetry, we design a dual-gate Ni/LaBr2 field-effect transistor that generates 100% spin-polarized currents under uniform gate biases and switches to a high-resistance state under opposing biases, achieving on/off ratios up to 105 at a low bias of 0.08 V. This device successfully integrates spin-filtering and spin-valve functionalities within a single architecture. Although the intrinsic Curie temperature (≈280 K) necessitates post-synthetic enhancement for room-temperature operation, this study establishes an interfacial design paradigm and material platform for developing low-power, integrated multifunctional spintronic devices.

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Publication Details

Journal
ACS Applied Electronic Materials
Published
2026-09-11
DOI
https://doi.org/10.1021/acsaelm.6c00793
Primary Topic
Heusler alloys: electronic and magnetic properties
Type
article
Field-Weighted Citation Impact
0.00

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article

Interface-Engineered Weak Fermi-Level Pinning and Spin-Dependent Schottky Barriers in M/LaBr2 (M = Ag, Co, Cu, Ni) Heterojunctions for Multifunctional Spintronics

Xinxin Qu, Lin Zhu, Lei Liao, Zhi Yang et al.
ACS Applied Electronic Materials
Heusler alloys: electronic and magnetic properties
article

Interface-Engineered Weak Fermi-Level Pinning and Spin-Dependent Schottky Barriers in M/LaBr2 (M = Ag, Co, Cu, Ni) Heterojunctions for Multifunctional Spintronics

Xinxin Qu, Lin Zhu, Lei Liao, Zhi Yang, Ali Shahzad
article en

Abstract

Abstract Metal-induced gap states (MIGS) and Fermi-level pinning (FLP) are major obstacles to achieving optimal spin injection efficiency at metal/magnetic semiconductor interfaces. This study demonstrates that integrating the transition metals (Ag, Co, Cu, and Ni) via van der Waals interactions with the two-dimensional bipolar magnetic semiconductor monolayer LaBr2 effectively suppresses these detrimental interfacial effects. The weak interlayer orbital hybridization drastically restrains MIGS generation and yields nearly ideal FLP with a pinning factor S ≈ 0.99, approaching the ideal Schottky–Mott limit. This high-quality interface preserves the intrinsic spin-split band structure of LaBr2, facilitating strongly spin-dependent Schottky barriers. Particularly, the Ni/LaBr2 junction exhibits a near-Ohmic contact for spin-up holes (0.03 eV barrier) and a Schottky barrier for spin-down electrons (0.21 eV barrier), enabling near-unity spin-filtering efficiency. Leveraging this asymmetry, we design a dual-gate Ni/LaBr2 field-effect transistor that generates 100% spin-polarized currents under uniform gate biases and switches to a high-resistance state under opposing biases, achieving on/off ratios up to 105 at a low bias of 0.08 V. This device successfully integrates spin-filtering and spin-valve functionalities within a single architecture. Although the intrinsic Curie temperature (≈280 K) necessitates post-synthetic enhancement for room-temperature operation, this study establishes an interfacial design paradigm and material platform for developing low-power, integrated multifunctional spintronic devices.

ACS Applied Electronic Materials
Huazhong University of Science and Technology Hospital (CN), Taiyuan University of Science and Technology (CN), Huazhong University of Science and Technology (CN), Taiyuan University of Technology (CN)
National Natural Science Foundation of China, Shanxi Scholarship Council of China, Natural Science Foundation of Shanxi Province
Openalex Percentile: Top 28%
Heusler alloys: electronic and magnetic properties
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