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Shape effect on a single-nanoparticle-based plasmonic nanosensor

机译:基于单纳米粒子的等离激元纳米传感器的形状效应

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摘要

Plasmonic refractometric nanosensors based on single nanostructures, i.e. spherical, nanorod- and bipyramid-shaped gold nanoparticles, are investigated and compared numerically by employing the finite-difference time-domain method. The results show that the plasmonic sensing ability is distributed anisotropically around the nanorod and bipyramid, even for spherical nanoparticles when the illumination light is linearly polarized. To optimize nanosensor performance, some anisotropy in the shape of nanoparticles is required, this latter serving as an intrinsic light polarization filter to suppress the disturbance from localized surface plasmon resonance in other directions. The plasmonic near-field can be engineered by controlling the shape to achieve a concentrated and localized electromagnetic field, in direct relation with the sensing ability. Taking these factors into account, the gold bipyramid nanoconstruct which is easily available in experiment is proposed as an efficient plasmonic sensing platform. The bipyramid presents both highly localized sensitivity and high scattering cross-section, thus avoiding the trade-off during the selection of the widely used nanorod-shaped sensors. The parameters of the bipyramid structure can be optimized by numerical simulation to improve the plasmonic sensing. Our findings permit a deeper understanding of single-nanoparticle-sensor behavior, and the study provides an opportunity to optimize the plasmonic sensor.
机译:研究了基于单个纳米结构的等离子折光法纳米传感器,即球形,纳米棒和双金字塔形的金纳米颗粒,并采用时域有限差分法进行了数值比较。结果表明,当照射光呈线性偏振状态时,即使对于球形纳米颗粒,等离子体感应能力也各向异性地分布在纳米棒和双锥体周围。为了优化纳米传感器的性能,需要纳米颗粒形状的一些各向异性,后者用作本征光偏振滤光片,以抑制来自其他方向局部表面等离子体激元共振的干扰。等离子体近场可以通过控制形状来设计,以实现集中且局域的电磁场,这与传感能力直接相关。考虑到这些因素,建议在实验中容易获得的金双锥体纳米结构作为有效的等离子体传感平台。双锥体具有高局部灵敏度和高散射截面的特点,因此避免了在选择广泛使用的纳米棒形传感器过程中的取舍。可以通过数值模拟来优化双锥体结构的参数以改善等离子体感测。我们的发现允许对单纳米颗粒传感器行为有更深入的了解,并且该研究为优化等离子体传感器提供了机会。

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