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分子束外延生长的富铟 In(x)Ga1-xN 纳米线中自发的核-壳元素分布。

Spontaneous core–shell elemental distribution in In-rich In(x)Ga1-xN nanowires grown by molecular beam epitaxy.

出版信息

Nanotechnology. 2014 Feb 21;25(7):075705. doi: 10.1088/0957-4484/25/7/075705.

DOI:10.1088/0957-4484/25/7/075705
PMID:24457628
Abstract

The elemental distribution of self-organized In-rich In(x)Ga1-xN nanowires grown by plasma-assisted molecular beam epitaxy has been investigated using three different techniques with spatial resolution on the nanoscale. Two-dimensional images and elemental profiles of single nanowires obtained by x-ray fluorescence and energy-dispersive x-ray spectroscopy, respectively, have revealed a radial gradient in the alloy composition of each individual nanowire. The spectral selectivity of resonant Raman scattering has been used to enhance the signal from very small volumes with different elemental composition within single nanowires. The combination of the three techniques has provided sufficient sensitivity and spatial resolution to prove the spontaneous formation of a core–shell nanowire and to quantify the thicknesses and alloy compositions of the core and shell regions. A theoretical model based on continuum elastic theory has been used to estimate the strain fields present in such inhomogeneous nanowires. These results suggest new strategies for achieving high quality nonpolar heterostructures.

摘要

采用三种具有纳米尺度空间分辨率的不同技术,研究了等离子体辅助分子束外延生长的自组织富 In 的 In(x)Ga1-xN 纳米线的元素分布。X 射线荧光和能量色散 X 射线光谱分别获得的单根纳米线的二维图像和元素分布表明,每个纳米线的合金组成存在径向梯度。共振拉曼散射的光谱选择性已被用于增强来自单个纳米线内具有不同元素组成的非常小体积的信号。这三种技术的结合提供了足够的灵敏度和空间分辨率,证明了核壳纳米线的自发形成,并定量了核和壳区域的厚度和合金组成。基于连续弹性理论的理论模型已被用于估计这种不均匀纳米线中存在的应变场。这些结果为实现高质量非极性异质结构提供了新策略。

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