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  4. A homogeneous and reproducible large-area, low dispersion GaN-on-Si normally-off 600 V transistor technology using selective GaN etching
 
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2018
Conference Paper
Title

A homogeneous and reproducible large-area, low dispersion GaN-on-Si normally-off 600 V transistor technology using selective GaN etching

Abstract
The epitaxial structures are grown by metal-organic chemical vapor deposition on 4-inch Si(lll) substrates. First, a graded A1GaN buffer is deposited to mitigate lattice and thermal coefficient mismatches. Second, a thick GaN layer with an AIN interlayer is grown, followed by the AIGaN/GaN heterojunction. The structure is capped by a p-doped GaN layer. Mg is used as acceptor with a concentration around 3−4 × 1019cm−3 according to secondary ion mass spectrometry. The structural properties of the samples are investigated using high-resolution X-ray diffraction, see Figure 1. The thickness (approx. 15 nm) and composition (around 20% Aluminum) of the AIGaN barrier are well within the parameter space to obtain normally-off devices [1]. The p-doped GaN cap has a thickness around 53 nm. A two-step dry-etch process based on a ChIN 2 /0 2 plasma [2] has been adapted in order to remove the p-doped GaN cap, see Figure 2. The process is characterized by a large process window in order to provide high reproducibility.
Author(s)
Waltereit, Patrick  
Preschle, Marina  
Müller, Stefan  
Kirste, Lutz  
Czap, Heiko  orcid-logo
Ruster, Joachim
Dammann, Michael  
Reiner, Richard  
Mainwork
76th Device Research Conference, DRC 2018  
Conference
Device Research Conference (DRC)  
DOI
10.1109/DRC.2018.8442144
Language
English
Fraunhofer-Institut für Angewandte Festkörperphysik IAF  
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