Kim Kyoung-Ho, No You-Shin
Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599-3290 USA.
Department of Physics, Konkuk University, Seoul, 05029 Republic of Korea.
Nano Converg. 2017;4(1):32. doi: 10.1186/s40580-017-0128-8. Epub 2017 Dec 11.
In this review, we introduce novel plasmonic and metamaterial devices based on one-dimensional subwavelength nanostructures with cylindrical symmetry. Individual single devices with semiconductor/metal core/shell or dielectric/metal core/multi-shell structures experience strong light-matter interaction and yield unique optical properties with a variety of functions, e.g., invisibility cloaking, super-scattering/super-absorption, enhanced luminescence and nonlinear optical activities, and deep subwavelength-scale optical waveguiding. We describe the rational design of core/shell cylindrical nanostructures and the proper choice of appropriate constituent materials, which allow the efficient manipulation of electromagnetic waves and help to overcome the limitations of conventional homogeneous nanostructures. The recent developments of bottom-up synthesis combined with the top-down fabrication technologies for the practical applications and the experimental realizations of 1D subwavelength core/shell nanostructure devices are briefly discussed.
在本综述中,我们介绍了基于具有圆柱对称性的一维亚波长纳米结构的新型等离子体和超材料器件。具有半导体/金属核/壳或电介质/金属核/多壳结构的单个器件会经历强烈的光与物质相互作用,并产生具有多种功能的独特光学特性,例如隐形隐身、超散射/超吸收、增强发光和非线性光学活性,以及深亚波长尺度的光波导。我们描述了核/壳圆柱纳米结构的合理设计以及合适组成材料的恰当选择,这使得能够有效操纵电磁波,并有助于克服传统均匀纳米结构的局限性。简要讨论了用于实际应用的自下而上合成与自上而下制造技术相结合的最新进展以及一维亚波长核/壳纳米结构器件的实验实现。