MOCVD Growth of (011) β-Ga2O3 Films: Defect Control and Device Implication

Abstract β-Ga2O3 is a promising ultrawide-bandgap semiconductor for high-power electronics; however, the realization of thick, low-defect drift layers at high growth rates remains challenging. In this work, metalorganic chemical vapor deposition (MOCVD) growth of (011) β-Ga2O3 drift layers on (011) β-Ga2O3 substrates is optimized using a far-injection showerhead reactor with trimethylgallium (TMGa) and O2 precursors. The effects of chemical pre-treatment, in situ oxygen annealing, wafer carrier rotation, and pulse-flow (PF) β-Ga2O3 interlayers are systematically investigated to correlate growth conditions with defect density. Chemical treatment B [18% HCl (10 min) + deionized (DI) water (10 min) + 49% HF (30 min)], combined with 1 h of in situ annealing at 900 °C, minimizes defect density under the selected growth conditions. Incorporation of a single PF1 interlayer (∼30 nm thick) further suppresses defect formation, reducing the defect density by more than one order of magnitude. Atomic force microscopy (AFM) reveals sub-nanometer root mean square (RMS) roughness and step-flow morphology for ∼11 μm thick films. High-resolution X-ray diffraction (XRD) rocking curves confirm the preserved crystalline quality. Field-plated Schottky barrier diodes (SBDs) fabricated on optimized films exhibit excellent forward conduction, low reverse leakage, and improved breakdown performance, highlighting the importance of defect control for high-performance vertical power devices.

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Publication Details

Journal
Crystal Growth & Design
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.cgd.6c00857
Primary Topic
Ga2O3 and related materials
Type
article
Field-Weighted Citation Impact
0.00

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article

MOCVD Growth of (011) β-Ga2O3 Films: Defect Control and Device Implication

Hongping Zhao, Yuki Ueda, Uttam Singisetti, Md Mosarof Hossain Sarkar et al.
Crystal Growth & Design
Ga2O3 and related materials
article

MOCVD Growth of (011) β-Ga2O3 Films: Defect Control and Device Implication

Hongping Zhao, Yuki Ueda, Uttam Singisetti, Md Mosarof Hossain Sarkar, Chia-Hung Lin, Jiawei Liu, Kohei Sasaki, Dong Su Yu
article en

Abstract

Abstract β-Ga2O3 is a promising ultrawide-bandgap semiconductor for high-power electronics; however, the realization of thick, low-defect drift layers at high growth rates remains challenging. In this work, metalorganic chemical vapor deposition (MOCVD) growth of (011) β-Ga2O3 drift layers on (011) β-Ga2O3 substrates is optimized using a far-injection showerhead reactor with trimethylgallium (TMGa) and O2 precursors. The effects of chemical pre-treatment, in situ oxygen annealing, wafer carrier rotation, and pulse-flow (PF) β-Ga2O3 interlayers are systematically investigated to correlate growth conditions with defect density. Chemical treatment B [18% HCl (10 min) + deionized (DI) water (10 min) + 49% HF (30 min)], combined with 1 h of in situ annealing at 900 °C, minimizes defect density under the selected growth conditions. Incorporation of a single PF1 interlayer (∼30 nm thick) further suppresses defect formation, reducing the defect density by more than one order of magnitude. Atomic force microscopy (AFM) reveals sub-nanometer root mean square (RMS) roughness and step-flow morphology for ∼11 μm thick films. High-resolution X-ray diffraction (XRD) rocking curves confirm the preserved crystalline quality. Field-plated Schottky barrier diodes (SBDs) fabricated on optimized films exhibit excellent forward conduction, low reverse leakage, and improved breakdown performance, highlighting the importance of defect control for high-performance vertical power devices.

Crystal Growth & Design
Crystal Research (United States) (US), The Ohio State University (US), University at Buffalo, State University of New York (US)
National Science Foundation, Air Force Office of Scientific Research
Openalex Percentile: Top 28%
Ga2O3 and related materials
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