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A multiplexed optofluidic biomolecular sensor for low mass detection

机译:用于低质量检测的多重光流体生物分子传感器

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摘要

Optical techniques have proven to be well suited for in situ biomolecular sensing because they enable high fidelity measurements in aqueous environments, are minimally affected by background solution pH or ionic strength, and facilitate label-free detection. Recently, there has been significant interest in developing new classes of optically resonant biosensors possessing very high quality-factors. This high quality-factor enables them to resolve the presence of very small amounts of bound mass and leads to very low limits of detection. A drawback of these devices is that the majority of the resonant electromagnetic energy is confined within the solid light-guiding structure thus limiting the degree to which it overlaps with the bound matter. This in turn lowers the ultimate device sensitivity, or , the change in output signal in response to changes in bound mass. Here we present a novel optofluidic biosensor platform that incorporates a unique one-dimensional photonic crystal resonator array which enables significantly stronger light-matter interaction. We show here how this, coupled with the ability of planar photonic crystals to spatially localize the optical field to mode volumes on the order of a wavelength cubed, enables a limit of detection on the order of 63 ag total bound mass (estimated using a polyelectrolyte growth model) and a device sensitivity an order of magnitude better than similar devices. The multiplexing capabilities of our sensor are demonstrated by the individual and concurrent detection of interleukins 4, 6 and 8 using a sandwich assay.
机译:光学技术已被证明非常适合原位生物分子传感,因为它们能够在水性环境中进行高保真度测量,受背景溶液pH或离子强度的影响最小,并且易于进行无标记检测。最近,人们对开发具有很高品质因数的新型光学共振生物传感器产生了极大的兴趣。这种高品质因数使他们能够解决非常少量的结合质量的存在,并导致非常低的检测限。这些装置的缺点在于,大部分共振电磁能被限制在固体光导结构内,从而限制了其与结合物重叠的程度。这继而降低了最终设备的灵敏度,或者说,响应于结合质量的变化,输出信号的变化。在这里,我们介绍了一种新颖的光流体生物传感器平台,该平台结合了独特的一维光子晶体谐振器阵列,从而能够实现更强的光物质相互作用。我们在这里展示了如何结合平面光子晶体将光场在空间上以立方立方量级的数量级模式空间定位的能力,使总结合质量达到63 ag量级的检测极限(使用聚电解质估计)增长模型)和设备灵敏度比类似设备好一个数量级。我们的传感器的多路复用能力通过使用三明治测定法对白介素4、6和8的单独检测和同时检测来证明。

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