首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Metal nanoparticle-semiconductor nanowire hybrid nanostructures for plasmon-enhanced optoelectronics and sensing
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Metal nanoparticle-semiconductor nanowire hybrid nanostructures for plasmon-enhanced optoelectronics and sensing

机译:用于等离激元增强光电子学和传感的金属纳米粒子-半​​导体纳米线混合纳米结构

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Plasmonic metal nanoparticles have recently attracted increasing interest due to their nanosized dimensions, tunable optical properties in the visible and near-infrared regions of the spectrum and easy manufacturing. Although the optical properties of these sub-wavelength objects arising from plasmonic resonances have been extensively investigated in both isolated and assembled structures, their rational integration in 1D semiconductor-based devices for generation of engineered properties is a novel and vastly unexplored field. In particular, development of metal nanoparticle-1D semiconductor hybrid nanostructures has been hampered by a number of challenges including limited control of component assembly processes and modest theoretical and experimental understanding of fundamental physical phenomena occurring in such hybrids. In this feature article, we describe recent progress in fabrication methods and review the relevant plasmonic properties of metal nanoparticles that can be exploited to manipulate, enhance and optimize the performance of semiconductor nanowire-based devices. Finally, we explore the enhanced properties of hybrid metal nanoparticle-semiconductor nanowire structures and describe their application in optoelectronics and sensing.
机译:等离子体金属纳米颗粒由于其纳米尺寸,在光谱的可见光和近红外区域具有可调的光学特性以及易于制造而引起了越来越多的关注。尽管已在隔离和组装结构中广泛研究了由等离子体共振产生的这些亚波长物体的光学特性,但它们在基于1D半导体的器件中合理集成以产生工程特性是一个新颖且尚未开发的领域。特别地,金属纳米粒子-1D半导体杂化纳米结构的发展受到许多挑战的阻碍,这些挑战包括部件组装过程的有限控制以及对此类杂化中发生的基本物理现象的适度理论和实验理解。在这篇专题文章中,我们描述了制造方法的最新进展,并综述了可用于操纵,增强和优化基于半导体纳米线的器件性能的金属纳米颗粒的相关等离子体性能。最后,我们探索了杂化金属纳米粒子-半​​导体纳米线结构的增强性能,并描述了它们在光电和传感领域的应用。

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