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首页> 外文期刊>Optics Communications: A Journal Devoted to the Rapid Publication of Short Contributions in the Field of Optics and Interaction of Light with Matter >Optimization methodology for structural multiparameter surface plasmon resonance sensors in different modulation modes based on particle swarm optimization
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Optimization methodology for structural multiparameter surface plasmon resonance sensors in different modulation modes based on particle swarm optimization

机译:基于粒子群优化的不同调制模式中结构多级表表面等离子体谐振传感器的优化方法

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摘要

One of the main challenges in designing plasmonic biosensors is maximizing their sensing performance. This study proposes heuristic algorithms based on surface plasmon resonance-particle swarm optimization (SPR-PSO), which were investigated for the optimization of the sensing performance of structural multiparameter SPR sensors in four modulation modes (phase, intensity, wavelength, and angle). Different fitness functions were designed for different modulation modes that comprised a variety of evaluation indicators (such as sensitivity, figure of merit, full-width-at-half-maximum, electric field intensity, and penetration depth). Four types of available experimental structures representing the various modulation schemes were compared with the corresponding optimized structure by algorithms. The results showed that the introduced algorithms have a considerable efficiency. Furthermore, the algorithms also showed some potential in aiding the parametric design of negative refractive index materials.
机译:设计等离子感生物传感器的主要挑战之一最大化它们的感应性能。本研究提出了基于表面等离子体共振粒子群优化(SPR-PSO)的启发式算法,该算法在四种调制模式(相位,强度,波长和角度)中研究了结构多次计SPR传感器的感测性能。针对不同的调制模式设计了不同的健身功能,包括各种评估指标(如灵敏度,优点,全宽半最大,电场强度和穿透深度)。将表示各种调制方案的四种类型的可用实验结构与算法相应的优化结构进行了比较。结果表明,引入的算法具有相当大的效率。此外,算法还显示出一些潜在的潜在折射率设计的可能性。

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