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Gold nanoparticle absorption under a nanoscale tip illuminated by surface-plasmon polaritons

机译:表面等离子极化子在纳米级尖端下吸收金纳米粒子

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This research numerically calculated the optical absorption of gold nanoparticles (AuNP) in the presence of metallic (Au) and dielectric (Si) AFM probes, illuminated by a surface plasmon polaritons on an infinite gold substrate. Nanoscale probes localize and enhance the field between the apex of the tip and the particle. However, the absorption of the nanoparticle is not always enhanced; in fact, under a gold tip, the absorption is suppressed for a 50 nm diameter AuNP. After fitting the numerical absorption data with the equation of a driven damped harmonic oscillator (HO), it was found that the AFM tip modifies both the driving force (F_0), consisting of the free carrier charge (q) and the driving field (E), and the overall damping of the oscillator (β). The enhancement or suppression of absorption with different tips can be understood in terms of competition between β and F_0. Introducing the metallic tip increases β and decreases F_0, resulting in reduced absorption. Introducing the dielectric tip, although it increases β, it also increases F_0, resulting in overall absorption enhancement. Therefore, one most consider both β and F_0 to control the absorption of nanoparticles under Surface Plasmon Polaritons.
机译:这项研究通过在无限金基底上的表面等离激元极化子照射下,在存在金属(Au)和电介质(Si)AFM探针的情况下,通过数值计算了金纳米颗粒(AuNP)的光吸收。纳米级探针定位并增强尖端和颗粒之间的场。然而,纳米颗粒的吸收并不总是增强的;反之亦然。实际上,在金尖端下,对于50nm直径的AuNP,吸收被抑制。将数值吸收数据与驱动阻尼谐波振荡器(HO)的方程拟合后,发现AFM尖端会改变由自由载流子电荷(q)和驱动场(E)组成的驱动力(F_0) ),以及振荡器的整体阻尼(β)。可以用β和F_0之间的竞争来理解用不同尖端增强或抑制吸收。引入金属尖端会增加β并降低F_0,从而导致吸收降低。引入电介质尖端,尽管它增加了β,但也增加了F_0,从而提高了整体吸收率。因此,大多数人同时考虑β和F_0来控制表面等离激元极化子下纳米颗粒的吸收。

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