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Understanding the Growth Mechanism of GaN Epitaxial Layers on Mechanically Exfoliated Graphite

机译:理解GaN外延层对机械剥离石墨的生长机制

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摘要

Abstract The growth mechanism of GaN epitaxial layers on mechanically exfoliated graphite is explained in detail based on classic nucleation theory. The number of defects on the graphite surface can be increased via O-plasma treatment, leading to increased nucleation density on the graphite surface. The addition of elemental Al can effectively improve the nucleation rate, which can promote the formation of dense nucleation layers and the lateral growth of GaN epitaxial layers. The surface morphologies of the nucleation layers, annealed layers and epitaxial layers were characterized by field-emission scanning electron microscopy, where the evolution of the surface morphology coincided with a 3D-to-2D growth mechanism. High-resolution transmission electron microscopy was used to characterize the microstructure of GaN. Fast Fourier transform diffraction patterns showed that cubic phase (zinc-blend structure) GaN grains were obtained using conventional GaN nucleation layers, while the hexagonal phase (wurtzite structure) GaN films were formed using AlGaN nucleation layers. Our work opens new avenues for using highly oriented pyrolytic graphite as a substrate to fabricate transferable optoelectronic devices.
机译:摘要基于经典成核理论,详细说明了GAN外延层对机械剥离石墨的生长机制。石墨表面上的缺陷的数量可以通过O-等离子体处理增加,导致石墨表面上的成核密度增加。元素Al的添加可以有效地提高成核速率,这可以促进致密成核层的形成和GaN外延层的横向生长。通过现场排放扫描电子显微镜表征成核层,退火层和外延层的表面形态,其中表面形态的进化与3D-2D生长机制一致。高分辨率透射电子显微镜用于表征GaN的微观结构。快速傅里叶变换衍射图案显示使用常规GaN成核层获得立方相(锌 - 混合结构)GaN晶粒,而使用AlGaN成核层形成六方相(紫立菌结构)GaN膜。我们的作品为使用高导向的热解石墨作为制造可转移光电器件的基板开辟了新的途径。

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