Defect-induced recombination analysis in 4H-SiC epitaxial layers based on detailed microwave photoconductive decay curve evaluation

Evaluation of defect-related carrier lifetimes in 4H-SiC epitaxial layers is essential for assessing material quality and device performance. The microwave photoconductive decay (μ-PCD) method is widely used for wafer-level lifetime characterization; however, conventional evaluations based on a single lifetime value provide limited insight into defect-induced recombination behavior. In this study, μ-PCD decay curves were analyzed in detail for various defect types in 4H-SiC epitaxial layers to elucidate the impact of defect-induced recombination on excess carrier decay behavior. Polytype inclusions, micropipes, stacking faults, and propagated stacking faults were identified from 1/e lifetime images derived from μ-PCD measurement data. Decay curves acquired at each defect location were analyzed using a multi-component model to separately evaluate the high-intensity (early-time) and low-intensity (late-time) regions. Although all defects appeared as lifetime-reduced regions in 1/e lifetime images, the corresponding μ-PCD decay curves exhibited distinct decay characteristics. Polytype inclusions exhibited both a short-lifetime component consistent with enhanced recombination at the defect interface and a long-lifetime component associated with the defect bulk, whereas planar defects, such as stacking faults, were predominantly governed by short-lifetime interface-related recombination. Furthermore, mapping images that selectively highlighted polytype inclusions were successfully demonstrated by focusing on decay behavior within a specific time window. These results indicate that the temporal characteristics of μ-PCD signals contain physically meaningful information, reflecting both the recombination environment and the cross-sectional structure of epitaxial defects. The proposed analysis framework extends μ-PCD from a conventional lifetime evaluation technique to an advanced, defect-selective characterization method for 4H-SiC epitaxial layers.

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Publication Details

Journal
Journal of Applied Physics
Published
2026-10-09
DOI
https://doi.org/10.1063/5.0349182
Primary Topic
Silicon Carbide Semiconductor Technologies
Type
article
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article

Defect-induced recombination analysis in 4H-SiC epitaxial layers based on detailed microwave photoconductive decay curve evaluation

Kazushi Hayashi, Junji Senzaki, Hideo Fujii, Takumi Wakabayashi et al.
Journal of Applied Physics
Silicon Carbide Semiconductor Technologies
article

Defect-induced recombination analysis in 4H-SiC epitaxial layers based on detailed microwave photoconductive decay curve evaluation

Kazushi Hayashi, Junji Senzaki, Hideo Fujii, Takumi Wakabayashi, Naoki Okano
article en

Abstract

Evaluation of defect-related carrier lifetimes in 4H-SiC epitaxial layers is essential for assessing material quality and device performance. The microwave photoconductive decay (μ-PCD) method is widely used for wafer-level lifetime characterization; however, conventional evaluations based on a single lifetime value provide limited insight into defect-induced recombination behavior. In this study, μ-PCD decay curves were analyzed in detail for various defect types in 4H-SiC epitaxial layers to elucidate the impact of defect-induced recombination on excess carrier decay behavior. Polytype inclusions, micropipes, stacking faults, and propagated stacking faults were identified from 1/e lifetime images derived from μ-PCD measurement data. Decay curves acquired at each defect location were analyzed using a multi-component model to separately evaluate the high-intensity (early-time) and low-intensity (late-time) regions. Although all defects appeared as lifetime-reduced regions in 1/e lifetime images, the corresponding μ-PCD decay curves exhibited distinct decay characteristics. Polytype inclusions exhibited both a short-lifetime component consistent with enhanced recombination at the defect interface and a long-lifetime component associated with the defect bulk, whereas planar defects, such as stacking faults, were predominantly governed by short-lifetime interface-related recombination. Furthermore, mapping images that selectively highlighted polytype inclusions were successfully demonstrated by focusing on decay behavior within a specific time window. These results indicate that the temporal characteristics of μ-PCD signals contain physically meaningful information, reflecting both the recombination environment and the cross-sectional structure of epitaxial defects. The proposed analysis framework extends μ-PCD from a conventional lifetime evaluation technique to an advanced, defect-selective characterization method for 4H-SiC epitaxial layers.

Journal of Applied PhysicsVol. 140(14)
Kobe Institute Of Computing (JP), Kobelco Eco-Solutions (Japan) (JP), National Institute of Advanced Industrial Science and Technology (JP), Kobe Steel (Japan) (JP)
Openalex Percentile: Top 23%
Silicon Carbide Semiconductor Technologies
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