Atomic layer annealing enables low-temperature PEALD growth of highly c-axis-oriented GaN thin films on sapphire

Low-temperature growth of crystalline GaN remains challenging for plasma-enhanced atomic layer deposition (PEALD) because limited adatom mobility often leads to poorly ordered films. Here, we investigate a cycle-integrated atomic layer annealing (ALA) strategy to enhance the crystallinity of GaN thin films grown on Al 2 O 3 (0001) by PEALD at 300 °C. Trimethylgallium and NH 3 plasma were used as the Ga and N sources, and an Ar plasma ALA step was inserted after each PEALD cycle to promote plasma-assisted atomic rearrangement. The ALA duration was varied from 0 to 60 s for non-pretreated samples, and NH 3 -plasma-pretreated samples were examined at 30 and 90 s ALA. X-ray diffraction and rocking-curve analysis show that the GaN(002) rocking-curve FWHM decreases from approximately 5.9° without ALA to 0.050° at 60 s ALA, indicating strongly enhanced out-of-plane c-axis orientation. At the same 30 s ALA duration, NH 3 plasma pre-treatment suppresses the secondary GaN-related diffraction component observed in the non-pretreated film, while the fitted FWHM values of ALA30 (0.083°) and P-ALA30 (0.078°) differ only slightly and are not interpreted as statistically different. Within the pretreated series, P-ALA90 exhibits a broader rocking-curve FWHM (0.091°) than P-ALA30; because a non-pretreated ALA90 control was not included, no specific degradation mechanism is assigned. Cross-sectional TEM and selected AFM and XPS measurements provide complementary microstructural, morphological, and chemical-state characterization. These results establish an ALA-duration-dependent process-window perspective for the low-temperature PEALD growth of highly c-axis-oriented GaN thin films on sapphire.

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Publication Details

Journal
Materials Science in Semiconductor Processing
Published
2026-09-17
DOI
https://doi.org/10.1016/j.mssp.2026.111183
Primary Topic
GaN-based semiconductor devices and materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Atomic layer annealing enables low-temperature PEALD growth of highly c-axis-oriented GaN thin films on sapphire

June Hyuk Lee, Văn Quảng Nguyễn, Thai-Quyen Quach, Quang Thành Bùi et al.
Materials Science in Semiconductor Processing
GaN-based semiconductor devices and materials
article

Atomic layer annealing enables low-temperature PEALD growth of highly c-axis-oriented GaN thin films on sapphire

June Hyuk Lee, Văn Quảng Nguyễn, Thai-Quyen Quach, Quang Thành Bùi, Dohoe Kim, Jihye Kim, Minji Jeong
article en

Abstract

Low-temperature growth of crystalline GaN remains challenging for plasma-enhanced atomic layer deposition (PEALD) because limited adatom mobility often leads to poorly ordered films. Here, we investigate a cycle-integrated atomic layer annealing (ALA) strategy to enhance the crystallinity of GaN thin films grown on Al 2 O 3 (0001) by PEALD at 300 °C. Trimethylgallium and NH 3 plasma were used as the Ga and N sources, and an Ar plasma ALA step was inserted after each PEALD cycle to promote plasma-assisted atomic rearrangement. The ALA duration was varied from 0 to 60 s for non-pretreated samples, and NH 3 -plasma-pretreated samples were examined at 30 and 90 s ALA. X-ray diffraction and rocking-curve analysis show that the GaN(002) rocking-curve FWHM decreases from approximately 5.9° without ALA to 0.050° at 60 s ALA, indicating strongly enhanced out-of-plane c-axis orientation. At the same 30 s ALA duration, NH 3 plasma pre-treatment suppresses the secondary GaN-related diffraction component observed in the non-pretreated film, while the fitted FWHM values of ALA30 (0.083°) and P-ALA30 (0.078°) differ only slightly and are not interpreted as statistically different. Within the pretreated series, P-ALA90 exhibits a broader rocking-curve FWHM (0.091°) than P-ALA30; because a non-pretreated ALA90 control was not included, no specific degradation mechanism is assigned. Cross-sectional TEM and selected AFM and XPS measurements provide complementary microstructural, morphological, and chemical-state characterization. These results establish an ALA-duration-dependent process-window perspective for the low-temperature PEALD growth of highly c-axis-oriented GaN thin films on sapphire.

Materials Science in Semiconductor ProcessingVol. 217
Korea Atomic Energy Research Institute (KR), Vietnam National University, Hanoi (VN), Advanced Biomass R&D Center (South Korea) (KR), Vietnam Academy of Science and Technology (VN), Hanoi University of Science and Technology (VN)
Ministry of Trade, Industry and Energy
Openalex Percentile: Top 17%
GaN-based semiconductor devices and materials
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