Tunable bandgap and Si-doping in N-polar AlGaN on C-face 4H-SiC via molecular beam epitaxy

Author:

Mondal Shubham1ORCID,Wang Ding1ORCID,Anhar Uddin Bhuiyan A F M2ORCID,Hu Mingtao1ORCID,Reddeppa Maddaka1ORCID,Wang Ping1ORCID,Zhao Hongping23ORCID,Mi Zetian1ORCID

Affiliation:

1. Department of Electrical Engineering and Computer Science, University of Michigan 1 , Ann Arbor, Michigan 48109, USA

2. Department of Electrical and Computer Engineering, The Ohio State University 2 , Columbus, Ohio 43210, USA

3. Department of Materials Science and Engineering, The Ohio State University 3 , Columbus, Ohio 43210, USA

Abstract

N-polar AlGaN is an emerging wide-bandgap semiconductor for next-generation high electron mobility transistors and ultraviolet light emitting diodes and lasers. Here, we demonstrate the growth and characterization of high-quality N-polar AlGaN films on C-face 4H-silicon carbide (SiC) substrates by molecular beam epitaxy. On optimization of the growth conditions, N-polar AlGaN films exhibit a crack free, atomically smooth surface (rms roughness ∼ 0.9 nm), and high crystal quality with low density of defects and dislocations. The N-polar crystallographic orientation of the epitaxially grown AlGaN film is unambiguously confirmed by wet chemical etching. We demonstrate precise compositional tunability of the N-polar AlGaN films over a wide range of Al content and a high internal quantum efficiency ∼74% for the 65% Al content AlGaN film at room temperature. Furthermore, controllable silicon (Si) doping in high Al content (65%) N-polar AlGaN films has been demonstrated with the highest mobility value ∼65 cm2/V-s observed corresponding to an electron concentration of 1.1 × 1017 cm−3, whereas a relatively high mobility value of 18 cm2/V-s is sustained for an electron concentration of 3.2 × 1019 cm−3, with an exceptionally low resistivity value of 0.009 Ω·cm. The polarity-controlled epitaxy of AlGaN on SiC presents a viable approach for achieving high-quality N-polar III-nitride semiconductors that can be harnessed for a wide range of emerging electronic and optoelectronic device applications.

Funder

Army Research Office

National Science Foundation

Office of Naval Research

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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