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Numerical design of surface magneto-plasmon sensors of Au/Co double-layer square arrayed nanopores on the continuous gold thin film

机译:连续金薄膜上Au/Co双层方形阵列纳米孔表面磁等离子体传感器的数值设计

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摘要

Surface magneto-plasmon (SMP) sensors have attracted continuous attention due to their field enhanced signal-to-noise ratios, sensitivities, and detection limits. Although many progresses have been achieved in the nanodots, nanorods, or nanodiscs, few studies have been conducted on films containing arrays of nanopores or nanoholes. SMP sensors based on arrays of nanopores could be much more promising for future ultrasensitive optical detectors since they can couple the SMP enhancement with Fabry–Pérot interference of nanopores for high-performance resonator sensors that can be further tuned under a magnetic field. We, thus, propose a high-performance SMP sensor based on the magneto-optical Kerr effect (MOKE) of films containing a square array of Au–Co double-layer nanopores on the Au film substrate or SMP-MOKE sensor. The local electric field around the magneto-plasmon arrays of nanopore photonic crystals can be greatly enhanced by applying an external magnetic field due to their magneto-optical activity and excitation of high-quality surface plasmon resonances. Multi-physics coupling simulations and validation by COMSOL on the structure-dependent optical properties suggest that the proposed SMP-MOKE sensor has a high sensitivity of 711 nm/Refractive Index Units (RIUs) and a figure of merit (FOM) of the order of 105 RIU−1, which is an order of magnitude greater than the best grating-type sensors, to the best of our knowledge. Our results shall facilitate the theoretical design for the future fabrication of ultra-sensitive sensors or resonators with excellent FOM and reliability for air-quality monitoring or chemical sensing, etc.
机译:表面磁等离子体(SMP)传感器因其场增强的信噪比、灵敏度和检测限而备受关注。尽管在纳米点、纳米棒或纳米圆盘方面取得了许多进展,但对含有纳米孔或纳米孔阵列的薄膜的研究却很少。基于纳米孔阵列的SMP传感器对于未来的超灵敏光学探测器来说可能更有前途,因为它们可以将SMP增强与纳米孔的Fabry-Pérot干涉耦合,从而获得可以在磁场下进一步调谐的高性能谐振器传感器。因此,我们提出了一种基于磁光克尔效应(MOKE)的高性能SMP传感器,该薄膜在Au薄膜基底上含有方形的Au-Co双层纳米孔阵列或SMP-MOKE传感器。纳米孔光子晶体的磁-等离子体阵列周围的局部电场可以通过施加外部磁场来大大增强,因为它们具有磁光活动和高质量表面等离子体共振的激发作用。COMSOL 对结构相关光学特性的多物理场耦合仿真和验证表明,据我们所知,所提出的 SMP-MOKE 传感器具有 711 nm/折射率单位 (RIU) 的高灵敏度和 105 RIU−1 量级的品质因数 (FOM),比最好的光栅型传感器高一个数量级。研究结果有助于未来制造具有优异FOM和可靠性的超灵敏传感器或谐振器的理论设计,用于空气质量监测或化学传感等。

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