首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Au-Cu2O Core-Shell Nanoparticles: A Hybrid Metal-Semiconductor Heteronanostructure with Geometrically Tunable Optical Properties
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Au-Cu2O Core-Shell Nanoparticles: A Hybrid Metal-Semiconductor Heteronanostructure with Geometrically Tunable Optical Properties

机译:Au-Cu2O核壳纳米粒子:具有几何可调光学特性的杂化金属-半导体杂种纳米结构。

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摘要

Metal-semiconductor hybrid heteronanostructures may exhibit not only a combination of properties from the disparate components but also further enhanced property tunability and new synergistic properties that arise from the interactions between the metal and semiconductor components. Here we demonstrate that the Au—Cu2O hybrid core—shell nanoparticles not only combine the optical signatures of Cu2O nanoshells and the plasmonic properties of Au nanoparticles but exhibit further enhanced and expanded plasmonic tunability as well due to the dielectric properties of the Cu2O shells surrounding the Au cores. We have developed a robust wet chemistry approach through which we can fine-control several important geometrical parameters of the Au—Cu2O core—shell nanoparticles, such as Cu2O shell thickness, size of the Au core, and the spacing between the core and shell, to systematically and selectively fine-tune the synergistic light absorption and scattering properties of the particles over a broad spectral range across the visible and near-infrared regions. We have further performed Mie scattering theory calculations to theoretically interpret the correlation between the geometrical parameters and optical characteristics of the Au—Cu2O hybrid nanoparticles. Such optical tunability achieved through the fine-control over core and shell geometries is believed to be important to the optimization of the overall performance of hybrid heteronanostructure-based materials and/or devices for photonic, electronic, and optoelectronic applications.
机译:金属-半导体混合异质结构不仅可以表现出来自不同成分的特性的组合,而且可以表现出进一步增强的特性可调谐性以及由于金属和半导体成分之间的相互作用而产生的新的协同特性。在这里,我们证明,Au-Cu2O杂化核-壳纳米颗粒不仅结合了Cu2O纳米壳的光学特征和Au纳米颗粒的等离子体性能,而且由于包围在容器周围的Cu2O外壳的介电性能,还表现出进一步增强和扩展的等离子体可调性。金芯。我们已经开发出一种鲁棒的湿化学方法,通过该方法,我们可以精细控制Au-Cu2O核-壳纳米颗粒的几个重要几何参数,例如Cu2O壳的厚度,Au核的大小以及核与壳之间的间距,在可见光和近红外区域的宽光谱范围内系统地和选择性地微调粒子的协同光吸收和散射特性。我们进一步进行了Mie散射理论计算,从理论上解释了Au-Cu2O杂化纳米粒子的几何参数与光学特性之间的相关性。通过对内核和外壳的几何形状进行精细控制,可以实现这种光学可调性,这对于优化基于混合异质结构的材料和/或用于光子,电子和光电应用的器件的整体性能至关重要。

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