Defect-state and electronic-structure modulation of β-Ga2O3 thin films via Zn/N Co-doping toward deep-ultraviolet optoelectronic materials

β-Ga 2 O 3 , an ultra-wide bandgap semiconductor, holds great promise for next-generation deep-ultraviolet (DUV) optoelectronics. Here, we demonstrate a Zn/N co-doping strategy to modulate the defect states and optical/electronic structure of β-Ga 2 O 3 thin films prepared by RF magnetron co-sputtering, followed by rapid thermal annealing. Structural and spectroscopic analyses reveal that Zn incorporation and N-related bonding modify lattice expansion, oxygen-defect-related spectral components, and near-surface electronic states, accompanied by a modest bandgap variation from 4.75 eV to 4.64 eV. The films exhibit smooth morphology, high optical transparency (>90% in the visible range), and Zn-dependent defect modulation. A key advancement is the sputtering-based co-doping design that fixes the N 2 flow while tuning Zn incorporation, enabling systematic investigation of Zn-dependent defect and band-structure modulation under a constant nitrogen-supply condition. This approach provides materials-level insight into dopant-dependent defect-state and electronic-structure modulation in sputtered β-Ga 2 O 3 thin films, offering a useful basis for future DUV-relevant optoelectronic material design.

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Publication Details

Journal
Materials Science in Semiconductor Processing
Published
2026-09-28
DOI
https://doi.org/10.1016/j.mssp.2026.111217
Primary Topic
Ga2O3 and related materials
Type
article
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Defect-state and electronic-structure modulation of β-Ga2O3 thin films via Zn/N Co-doping toward deep-ultraviolet optoelectronic materials

Tai‐Chen Kuo, Michael Ira Current, Shih-Syun Chen, Tai-Jui Sung et al.
Materials Science in Semiconductor Processing
Ga2O3 and related materials
article

Defect-state and electronic-structure modulation of β-Ga2O3 thin films via Zn/N Co-doping toward deep-ultraviolet optoelectronic materials

Tai‐Chen Kuo, Michael Ira Current, Shih-Syun Chen, Tai-Jui Sung, Wen-Hsi Lee
article en

Abstract

β-Ga 2 O 3 , an ultra-wide bandgap semiconductor, holds great promise for next-generation deep-ultraviolet (DUV) optoelectronics. Here, we demonstrate a Zn/N co-doping strategy to modulate the defect states and optical/electronic structure of β-Ga 2 O 3 thin films prepared by RF magnetron co-sputtering, followed by rapid thermal annealing. Structural and spectroscopic analyses reveal that Zn incorporation and N-related bonding modify lattice expansion, oxygen-defect-related spectral components, and near-surface electronic states, accompanied by a modest bandgap variation from 4.75 eV to 4.64 eV. The films exhibit smooth morphology, high optical transparency (>90% in the visible range), and Zn-dependent defect modulation. A key advancement is the sputtering-based co-doping design that fixes the N 2 flow while tuning Zn incorporation, enabling systematic investigation of Zn-dependent defect and band-structure modulation under a constant nitrogen-supply condition. This approach provides materials-level insight into dopant-dependent defect-state and electronic-structure modulation in sputtered β-Ga 2 O 3 thin films, offering a useful basis for future DUV-relevant optoelectronic material design.

Materials Science in Semiconductor ProcessingVol. 218
Chung Yuan Christian University (TW), National Cheng Kung University (TW)
Openalex Percentile: Top 30%
Ga2O3 and related materials
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