Islam Md Saiful, Sultana Jakeya, Rifat Ahmmed A, Ahmed Rajib, Dinovitser Alex, Ng Brian W-H, Ebendorff-Heidepriem Heike, Abbott Derek
Opt Express. 2018 Nov 12;26(23):30347-30361. doi: 10.1364/OE.26.030347.
We propose and numerically characterize the optical characteristics of a novel photonic crystal fiber (PCF) based surface plasmon resonance (SPR) sensor in the visible to near infrared (500-2000 nm) region for refractive index (RI) sensing. The finite element method (FEM) is used to design and study the influence of different geometric parameters on the sensing performance of the sensor. The chemically stable plasmonic material gold (Au) is used to produce excitation between the core and plasmonic mode. On a pure silica (SiO) substrate, a rectangular structured core is used to facilitate the coupling strength between the core and the surface plasmon polariton (SPP) mode and thus improves the sensing performance. By tuning the geometric parameters, simulation results show a maximum wavelength sensitivity of 58000 nm/RIU (Refractive Index Unit) for the x polarization and 62000 nm/RIU for the y polarization for analyte refractive indices ranging from 1.33 to 1.43. Moreover, we characterize the amplitude sensitivity of the sensor that shows a maximum sensitivity of 1415 RIU and 1293 RIU for the x and y polarizations, respectively. To our knowledge, this is the highest sensitivity for an SPR in published literature, and facilitates future development of sensors for accurate and precise analyte measurement. The sensor also attains a maximum figure of merit (FOM) of 1140 and fine RI resolution of 1.6 × 10. Owing to strong coupling strength, high sensitivity, high FOM and improved sensing resolution, the proposed sensor is suited for real-time, inexpensive and accurate detection of biomedical and biological analytes, biomolecules, and organic chemicals.
我们提出并通过数值方法表征了一种新型光子晶体光纤(PCF)基表面等离子体共振(SPR)传感器在可见光到近红外(500 - 2000 nm)区域用于折射率(RI)传感的光学特性。采用有限元方法(FEM)来设计并研究不同几何参数对传感器传感性能的影响。使用化学性质稳定的等离子体材料金(Au)在纤芯和等离子体模式之间产生激发。在纯二氧化硅(SiO)衬底上,采用矩形结构的纤芯来促进纤芯与表面等离子体激元(SPP)模式之间的耦合强度,从而提高传感性能。通过调整几何参数,模拟结果表明,对于折射率范围为1.33至1.43的分析物,x偏振的最大波长灵敏度为58000 nm/RIU(折射率单位),y偏振为62000 nm/RIU。此外,我们还表征了传感器的幅度灵敏度,结果显示x和y偏振的最大灵敏度分别为1415 RIU和1293 RIU。据我们所知,这是已发表文献中SPR的最高灵敏度,有助于未来开发用于精确分析物测量的传感器。该传感器还实现了1140的最大品质因数(FOM)和1.6×10的精细RI分辨率。由于强耦合强度、高灵敏度、高FOM和改进的传感分辨率,所提出的传感器适用于生物医学和生物分析物、生物分子以及有机化学品的实时、低成本且准确的检测。