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通过自组装金纳米棒异质二聚体实现可见光区的等离子体诱导透明。

Plasmon-induced transparency in the visible region via self-assembled gold nanorod heterodimers.

机构信息

Air Force Research Laboratory, Wright Patterson Air Force Base , 2941 Hobson Way, Wright Patterson Air Force Base, Ohio 45433, United States.

出版信息

Nano Lett. 2013;13(12):6287-91. doi: 10.1021/nl403911z. Epub 2013 Nov 27.

Abstract

The phenomenon of plasmon-induced transparency holds immense potential for high sensitivity sensors and optical information processing due to the extreme dispersion and slowing of light within a narrow spectral window. Unfortunately plasmonic metamaterials demonstrating this effect has been restricted to infrared and greater wavelengths due to requisite precision in structure fabrication. Here we report a novel metamaterial synthesized by bottom-up self-assembly of gold nanorods. The small dimensions (≤ 50/20 nm, length/diameter), atomically smooth surfaces, and nanometer resolution enable the first demonstration of plasmon-induced transparency at visible wavelengths. The slow-down factors within the reduced symmetry heterodimer cluster are comparable to longer wavelength counterparts. The inherent spectral tunability and facile large-scale integration afforded by self-assembled metamaterials will open a new paradigm for physically realizable on-chip photonic device designs.

摘要

等离子体激元诱导透明现象由于在窄光谱窗口内光的极端色散和减缓,在高灵敏度传感器和光学信息处理方面具有巨大的潜力。不幸的是,由于结构制造所需的精度,表现出这种效应的等离子体超材料一直局限于红外和更大的波长。在这里,我们报告了一种通过自下而上的金纳米棒自组装合成的新型超材料。小尺寸(≤50/20nm,长度/直径)、原子级光滑表面和纳米级分辨率使在可见光波长下首次实现等离子体激元诱导透明成为可能。在减少对称性的异质二聚体簇内的减缓因子与较长波长的对应物相当。自组装超材料提供的固有光谱可调性和易于实现的大规模集成将为物理上可实现的片上光子器件设计开辟一个新的范例。

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