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首页> 外文期刊>Journal of nanoparticle research: An interdisciplinary forum for nanoscale science and technology >Optimized plasmonic configurations: adjacent and merging regimes between a symmetric couple of Au rod/shell nanoarrangements for LSPR sensing and spectroscopic purposes
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Optimized plasmonic configurations: adjacent and merging regimes between a symmetric couple of Au rod/shell nanoarrangements for LSPR sensing and spectroscopic purposes

机译:优化的等离激元构型:对称和对称的Au棒/壳纳米排列对之间的相邻和合并机制,用于LSPR感测和光谱分析

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摘要

In this work, we studied the optical properties and spectral response of a novel and practical plasmonic pair shape configuration of gold rod/shell nanoparticles theoretically and numerically. We investigated that proposed pairs that are acknowledged as dimers can be presented in various fashions to apply in numerous purposes. The effect of controlled structural and chemical modifications on the optical response and scattering efficiency of the configuration have been determined. Moreover, proposed pair of gold rod/shell nanocompositions in touching and nontouching regimes have been studied to provide weak and strong coupling of plasmon resonance modes. The confirmed geometrical parameters sizes for proposed composition of rod and shell have been determined as R_(rod) = 60 nm, H_(rod) = 35 nm, and R_(i(shell)) = 80.5 nm, R_(o(shell)) = 115.5 nm, H_(shell) = 35 nm, respectively, which have been modified subtlety during examinations to obtain desired spectral results. Considering these quantities, we measured the shape factor of an isolated rod/shell configuration as exactly κ = 3.6. Also, we utilized same geometrical sizes in the dimer structure, and the effect of interparticle distance as a crucial factor in measuring the strength of resonance coupling have been analyzed numerically in the strong coupling regime, which is quantified as D ~ 2 nm. We showed that red and blue-shifts of LSPR can be detected based on the tuning of the proximity distance (interparticle distance) of the two arrangements pair. The influence of separation and merging distances on the plasmon resonance excitation and coupling intensity have been considered and examined numerically. Finally, the ultra-sensitivity of the proposed pair for molecular sensing and spectroscopy purposes have been elucidated based on the position of the peak of scattering intensity. Obtained results based on finite-difference time-domain method have proved that the proposed structure is a practical system in complex sensing and spectroscopy applications.
机译:在这项工作中,我们在理论上和数值上研究了一种新颖实用的金棒/壳纳米粒子的等离激元对形状构型的光学性质和光谱响应。我们调查了被认为是二聚体的提议对可以多种方式呈现,以用于多种目的。已经确定了受控的结构和化学修饰对构型的光学响应和散射效率的影响。此外,已经研究了在接触和非接触状态下建议的一对金杆/壳纳米组合物,以提供等离子体共振模式的弱耦合和强耦合。确定的建议的杆和壳组成的几何参数尺寸确定为R_(杆)= 60 nm,H_(杆)= 35 nm和R_(i(壳))= 80.5 nm,R_(o(壳) )= 115.5 nm,H_(shell)= 35 nm,在检查过程中已对其进行了微妙的修改,以获得所需的光谱结果。考虑到这些量,我们测量了一个孤立的杆/壳结构的形状因子,正好是κ= 3.6。同样,我们在二聚体结构中使用了相同的几何尺寸,并且在强耦合方式下,数值分析了粒子间距离作为测量共振耦合强度的关键因素的影响,量化为D〜2 nm。我们表明,基于两个排列对的邻近距离(粒子间距离)的调整,可以检测到LSPR的红移和蓝移。分离距离和合并距离对等离子体共振激发和耦合强度的影响已被考虑并进行了数值检验。最后,基于散射强度峰值的位置,阐明了用于分子传感和光谱学目的的提议对的超灵敏性。基于时域有限差分法的结果表明,该结构是一种实用的系统,适用于复杂的传感和光谱应用。

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