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Ultrathin silicon oxynitride layer on GaN for dangling-bond-free GaN/insulator interface.


ABSTRACT: Despite the scientific and technological importance of removing interface dangling bonds, even an ideal model of a dangling-bond-free interface between GaN and an insulator has not been known. The formation of an atomically thin ordered buffer layer between crystalline GaN and amorphous SiO2 would be a key to synthesize a dangling-bond-free GaN/SiO2 interface. Here, we predict that a silicon oxynitride (Si4O5N3) layer can epitaxially grow on a GaN(0001) surface without creating dangling bonds at the interface. Our ab initio calculations show that the GaN/Si4O5N3 structure is more stable than silicon-oxide-terminated GaN(0001) surfaces. The electronic properties of the GaN/Si4O5N3 structure can be tuned by modifying the chemical components near the interface. We also propose a possible approach to experimentally synthesize the GaN/Si4O5N3 structure.

SUBMITTER: Nishio K 

PROVIDER: S-EPMC5780416 | biostudies-literature | 2018 Jan

REPOSITORIES: biostudies-literature

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Ultrathin silicon oxynitride layer on GaN for dangling-bond-free GaN/insulator interface.

Nishio Kengo K   Yayama Tomoe T   Miyazaki Takehide T   Taoka Noriyuki N   Shimizu Mitsuaki M  

Scientific reports 20180123 1


Despite the scientific and technological importance of removing interface dangling bonds, even an ideal model of a dangling-bond-free interface between GaN and an insulator has not been known. The formation of an atomically thin ordered buffer layer between crystalline GaN and amorphous SiO<sub>2</sub> would be a key to synthesize a dangling-bond-free GaN/SiO<sub>2</sub> interface. Here, we predict that a silicon oxynitride (Si<sub>4</sub>O<sub>5</sub>N<sub>3</sub>) layer can epitaxially grow on  ...[more]

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