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石墨和少层石墨烯上垂直排列的 GaAs 纳米线:通用模型和外延生长。

Vertically aligned GaAs nanowires on graphite and few-layer graphene: generic model and epitaxial growth.

机构信息

Department of Electronics and Telecommunications, Norwegian University of Science and Technology (NTNU), NO-7491 Trondheim, Norway.

出版信息

Nano Lett. 2012 Sep 12;12(9):4570-6. doi: 10.1021/nl3018115. Epub 2012 Aug 23.

Abstract

By utilizing the reduced contact area of nanowires, we show that epitaxial growth of a broad range of semiconductors on graphene can in principle be achieved. A generic atomic model is presented which describes the epitaxial growth configurations applicable to all conventional semiconductor materials. The model is experimentally verified by demonstrating the growth of vertically aligned GaAs nanowires on graphite and few-layer graphene by the self-catalyzed vapor-liquid-solid technique using molecular beam epitaxy. A two-temperature growth strategy was used to increase the nanowire density. Due to the self-catalyzed growth technique used, the nanowires were found to have a regular hexagonal cross-sectional shape, and are uniform in length and diameter. Electron microscopy studies reveal an epitaxial relationship of the grown nanowires with the underlying graphitic substrates. Two relative orientations of the nanowire side-facets were observed, which is well explained by the proposed atomic model. A prototype of a single GaAs nanowire photodetector demonstrates a high-quality material. With GaAs being a model system, as well as a very useful material for various optoelectronic applications, we anticipate this particular GaAs nanowire/graphene hybrid to be promising for flexible and low-cost solar cells.

摘要

通过利用纳米线的减小的接触面积,我们表明,在原则上可以实现在石墨烯上外延生长各种半导体。提出了一个通用的原子模型,该模型描述了适用于所有常规半导体材料的外延生长构型。通过使用分子束外延的自催化汽-液-固技术,在石墨和少层石墨烯上垂直生长 GaAs 纳米线,实验验证了该模型。使用了双温生长策略来增加纳米线密度。由于使用了自催化生长技术,发现纳米线具有规则的六边形横截面形状,并且在长度和直径上均匀。电子显微镜研究揭示了所生长的纳米线与下面的石墨衬底之间的外延关系。观察到纳米线的两个相对侧棱的取向,这很好地解释了所提出的原子模型。单个 GaAs 纳米线光电探测器的原型证明了高质量的材料。由于 GaAs 是一个模型系统,也是各种光电应用非常有用的材料,我们预计这种特殊的 GaAs 纳米线/石墨烯杂化对于柔性和低成本太阳能电池很有前途。

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