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Fano lineshapes of 'Peak-tracking chip' spatial profiles analyzed with correlation analysis for bioarray imaging and refractive index sensing

机译:具有Bioarray成像和折射率传感的相关分析,分析了“峰跟踪芯片”空间型材的Fano LineShapes

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The asymmetric Fano resonance lineshapes, resulting from interference between background and a resonant scattering, is archetypal in resonant waveguide grating (RWG) reflectivity. Resonant profile shift resulting from a change of refractive index (from fluid medium or biomolecules at the chip surface) is classically used to perform label-free sensing. Lineshapes are sometimes sampled at discretized "detuning" values to relax instrumental demands, the highest reflectivity element giving a coarse resonance estimate. A finer extraction, needed to increase sensor sensitivity, can be obtained using a correlation approach, correlating the sensed signal to a zero-shifted reference signal. Fabrication process is presented leading to discrete Fano profiles. Our findings are illustrated with resonance profiles from silicon nitride RWGs operated at visible wavelengths. We recently demonstrated that direct imaging multi-assay RWGs sensing may be rendered more reliable using "chirped" RWG chips, by varying a RWG structure parameter. Then, the spatial reflectivity profiles of tracks composed of RWGs units with slowly varying filling factor (thus slowly varying resonance condition) are measured under monochromatic conditions. Extracting the resonance location using spatial Fano profiles allows multiplex refractive index based sensing. Discretization and sensitivity are discussed both through simulation and experiment for different filling factor variation, here Δf=0.0222 and Δf=0.0089. This scheme based on a "Peak-tracking chip" demonstrates a new technique for bioarray imaging using a simpler set-up that maintains high performance with cheap lenses, with down to Δn=2× 10~(-5) RIU sensitivity for the highest sampling of Fano lineshapes.
机译:由背景和谐振散射之间的干扰产生的不对称FANO共振线接收,是谐振波导光栅(RWG)反射率的原型。由折射率的变化产生的共振轮廓偏移(来自芯片表面的流体介质或生物分子)经典用于进行无标签感测。线接收有时在离散的“抗谐”值下采样,以放宽仪器需求,最高的反射元素给出粗糙的共振估计。可以使用相关方法获得需要提高传感器灵敏度的更精细的提取,将感测信号与零移位的参考信号相关联。提出了制造过程,导致离散的Fano型材。我们的发现用来自在可见波长下操作的氮化硅RWG的谐振型材示出。我们最近证明,通过改变RWG结构参数,可以使用“啁啾”RWG芯片更可靠地呈现直接成像多测定RWGS检测。然后,在单色条件下测量由具有缓慢变化的填充因子(因此缓慢变化的共振条件)的RWGS单元组成的轨道的空间反射率谱。使用空间扇形配置文件提取谐振位置允许基于多路复用折射率的感测。通过针对不同填充因子变化的模拟和实验讨论离散化和灵敏度,这里ΔF= 0.0222和ΔF= 0.0089。基于“峰值跟踪芯片”的该方案演示了使用更简单的设置的生物阵列成像的新技术,该技术与廉价镜头保持高性能,下降到Δn= 2×10〜(-5)Riu敏感度最高Fano Lineshapes的抽样。

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