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Plasmonic interferometry for biosensing

机译:用于生物传感的等离子体干涉测量法

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In this work, we report the design, fabrication and characterization of novel biochemical sensors consisting of nanoscale grooves and slits milled in a metal film to form planar plasmonic interferometry. By integrating thousands of plasmonic interferometers per square millimeter with a microfluidic system, we demonstrate a sensor able to detect physiological concentrations of glucose in water over a broad wavelength range (400–800 nm). A wavelength sensitivity between 370–630 nm/RIU (RIU, Refractive Index Units), a relative intensity change between ∼103–106 %/RIU, and a resolution of ∼3×10−7 in refractive index change were experimentally measured using typical sensing volumes as low as 20 femtoliters. These results show that multispectral plasmonic interferometry is a promising approach for the development of high-throughput, real-time and extremely compact biochemical sensors.
机译:在这项工作中,我们报告了一种由纳米级凹槽和在金属膜中研磨的纳米槽和狭缝组成的新型生物化学传感器的设计,制造和表征,以形成平面等离子体干涉测量法。 通过将数千个具有微流体系统的每平方毫米的千分之二的等离子体干涉仪整合,我们证明了一种能够在宽波长范围(400-800nm)上检测水中葡萄糖的生理浓度的传感器。 370-630 nm / Riu(RiU,折射率单位)之间的波长灵敏度,&#223c之间的相对强度变化; 10 3 -10 6 %/ riu, 和∼ 3× 10 − 7 在折射率变化中使用典型的传感量低至20 femtoliters的实验测量。 这些结果表明,多光谱等离子体干涉测量法是开发高通量,实时和极其紧凑的生化传感器的有希望的方法。

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