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Polarization invariant plasmonic nanostructures for sensing applications

机译:用于传感应用的极化不变等离子体纳米结构

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摘要

Optics-based sensing platform working under unpolarized light illumination is of practical importance in the sensing applications. For this reason, sensing platforms based on localized surface plasmons are preferred to their integrated optics counterparts for their simple mode excitation and inexpensive implementation. However, their optical response under unpolarized light excitation is typically weak due to their strong polarization dependence. Herein, the role of rotational symmetry for realizing robust sensing platform exhibiting strong optical contrast and high sensitivity is explored. Specifically, gammadion and star-shaped gold nanostructures with different internal and external rotational symmetries are fabricated and studied in detail, from which their mode characteristics are demonstrated as superposition of their constituent longitudinal plasmons that are in conductive coupling with each other. We demonstrate that introducing and increasing internal rotational symmetry would lead to the enhancement in optical contrast up to ~3x under unpolarized light illumination. Finally, we compare the sensing performances of rotationally symmetric gold nanostructures with a more rigorous figure-of-merit based on sensitivity, Q-factor, and spectral contrast.
机译:在非偏振光照明下工作的基于光学的传感平台在传感应用中具有实际重要性。由于这个原因,基于局部表面等离子体激元的传感平台比其集成的光学等价物更受青睐,因为它们具有简单的模式激发和廉价的实现。然而,由于它们强烈的偏振依赖性,它们在非偏振光激发下的光学响应通常较弱。在本文中,探讨了旋转对称对于实现具有强光学对比度和高灵敏度的鲁棒感测平台的作用。具体而言,制备并详细研究了具有不同内部和外部旋转对称性的gamgamion和星形金纳米结构,从中证明了它们的模态特征是它们相互之间导电耦合的纵向等离激元的叠加。我们证明,引入和增加内部旋转对称性将导致在非偏振光照射下光学对比度提高到〜3x。最后,我们根据灵敏度,Q因子和光谱对比度,比较旋转对称金纳米结构的传感性能和更严格的品质因数。

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