Janz S, Xu D-X, Vachon M, Sabourin N, Cheben P, McIntosh H, Ding H, Wang S, Schmid J H, Delâge A, Lapointe J, Densmore A, Ma R, Sinclair W, Logan S M, Mackenzie R, Liu Q Y, Zhang D, Lopinski G, Mozenson O, Gilmour M, Tabor H
National Research Council Canada (NRC), Ottawa, Ontario, K1A 0R6, Canada.
Opt Express. 2013 Feb 25;21(4):4623-37. doi: 10.1364/OE.21.004623.
A complete photonic wire molecular biosensor microarray chip architecture and supporting instrumentation is described. Chip layouts with 16 and 128 independent sensors have been fabricated and tested, where each sensor can provide an independent molecular binding curve. Each sensor is 50 μm in diameter, and consists of a millimeter long silicon photonic wire waveguide folded into a spiral ring resonator. An array of 128 sensors occupies a 2 × 2 mm2 area on a 6 × 9 mm2 chip. Microfluidic sample delivery channels are fabricated monolithically on the chip. The size and layout of the sensor array is fully compatible with commercial spotting tools designed to independently functionalize fluorescence based biochips. The sensor chips are interrogated using an instrument that delivers sample fluid to the chip and is capable of acquiring up to 128 optical sensor outputs simultaneously and in real time. Coupling light from the sensor chip is accomplished through arrays of sub-wavelength surface grating couplers, and the signals are collected by a fixed two-dimensional detector array. The chip and instrument are designed so that connection of the fluid delivery system and optical alignment are automated, and can be completed in a few seconds with no active user input. This microarray system is used to demonstrate a multiplexed assay for serotyping E. coli bacteria using serospecific polyclonal antibody probe molecules.
本文描述了一种完整的光子线分子生物传感器微阵列芯片架构及配套仪器。已制作并测试了具有16个和128个独立传感器的芯片布局,其中每个传感器可提供独立的分子结合曲线。每个传感器直径为50μm,由一条毫米长的硅光子线波导折叠成螺旋环形谐振器组成。128个传感器的阵列在一个6×9mm2的芯片上占据2×2mm2的面积。微流体样品输送通道在芯片上整体制作。传感器阵列的尺寸和布局与设计用于独立功能化基于荧光的生物芯片的商业点样工具完全兼容。使用一种仪器对传感器芯片进行检测,该仪器将样品流体输送到芯片,并能够同时实时获取多达128个光学传感器输出。来自传感器芯片的耦合光通过亚波长表面光栅耦合器阵列实现,信号由固定的二维探测器阵列收集。芯片和仪器的设计使得流体输送系统的连接和光学对准自动化,无需用户主动输入,几秒钟内即可完成。该微阵列系统用于展示使用血清特异性多克隆抗体探针分子对大肠杆菌进行血清分型的多重检测。