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首页> 外文期刊>Applied Physics B: Lasers and Optics >Numerical investigations of a multi-walled carbon nanotube-based multi-segmented optical antenna
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Numerical investigations of a multi-walled carbon nanotube-based multi-segmented optical antenna

机译:基于多壁碳纳米管的多段光学天线的数值研究

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Motivated by the fabrication potential of multi-walled carbon nanotube structures, we numerically investigated a paired structure consisting of two metallic spheres each grown on one end of a multi-walled nanotube. The paired two-segmented structure is capable to convert free-space radiation into an intense near-field, and, hence, acting as an optical antenna. Vice versa the presence of the two nanotubes enable a current source at the antenna feed to more efficiently energy into the radiation modes, resulting e.g. in correspondingly altered luminescence lifetimes when an excited single molecule is placed in the feed point. Furthermore, the structure represents a mean to localize light on a sub-wavelength scale within different materials, which is interesting in the context of a fabrication technology for integrated nanophotonic components with different material combinations. The optical properties of the nano-antenna are analyzed by means of numerical simulations using the finite element method. Our investigations have revealed that the field enhancement, the resonances, and the radiation patterns can be easily tuned since all these quantities strongly depend on the size of the nanotubes and the metallic spheres, as well as on their material properties The structure we propose here carries a great potential for bio-sensing, for tip-enhanced spectroscopy applications, and for interfacing integrated photonic nano circuits.
机译:受多壁碳纳米管结构的制造潜力的激励,我们在数值上研究了由两个金属球组成的成对结构,每个金属球均生长在多壁纳米管的一端。成对的两段式结构能够将自由空间辐射转换为强烈的近场,因此可以用作光学天线。反之亦然,两个纳米管的存在使得天线馈源处的电流源能够更有效地将能量转换成辐射模式,从而导致例如。当将激发的单个分子置于进料点时,发光寿命会相应改变。此外,该结构表示将光以亚波长尺度定位在不同材料内的平均值,这在具有不同材料组合的集成纳米光子组件的制造技术的背景下是令人感兴趣的。通过使用有限元方法的数值模拟来分析纳米天线的光学特性。我们的研究表明,场增强,共振和辐射方向图很容易调整,因为所有这些量都强烈取决于纳米管和金属球的尺寸以及它们的材料特性。在生物传感,尖端光谱学应用以及与集成光子纳米电路的接口方面具有巨大潜力。

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