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用于比色生化传感的基于智能手机的自参考纳米等离子体成像平台。

Self-Referenced Smartphone-Based Nanoplasmonic Imaging Platform for Colorimetric Biochemical Sensing.

作者信息

Wang Xinhao, Chang Te-Wei, Lin Guohong, Gartia Manas Ranjan, Liu Gang Logan

机构信息

Micro and Nanotechnology Laboratory, Department of Electrical Engineering, University of Illinois at Urbana-Champaign , Urbana, Illinois 61801, United States.

Department of Mechanical and Industrial Engineering, Louisiana State University , Baton Rouge, Louisiana 70803, United States.

出版信息

Anal Chem. 2017 Jan 3;89(1):611-615. doi: 10.1021/acs.analchem.6b02484. Epub 2016 Dec 15.

Abstract

Colorimetric sensors usually suffer due to errors from variation in light source intensity, the type of light source, the Bayer filter algorithm, and the sensitivity of the camera to incoming light. Here, we demonstrate a self-referenced portable smartphone-based plasmonic sensing platform integrated with an internal reference sample along with an image processing method to perform colorimetric sensing. Two sensing principles based on unique nanoplasmonics enabled phenomena from a nanostructured plasmonic sensor, named as nanoLCA (nano Lycurgus cup array), were demonstrated here for colorimetric biochemical sensing: liquid refractive index sensing and optical absorbance enhancement sensing. Refractive indices of colorless liquids were measured by simple smartphone imaging and color analysis. Optical absorbance enhancement in the colorimetric biochemical assay was achieved by matching the plasmon resonance wavelength with the chromophore's absorbance peak wavelength. Such a sensing mechanism improved the limit of detection (LoD) by 100 times in a microplate reader format. Compared with a traditional colorimetric assay such as urine testing strips, a smartphone plasmon enhanced colorimetric sensing system provided 30 times improvement in the LoD. The platform was applied for simulated urine testing to precisely identify the samples with higher protein concentration, which showed potential point-of-care and early detection of kidney disease with the smartphone plasmonic resonance sensing system.

摘要

比色传感器通常会因光源强度变化、光源类型、拜耳滤镜算法以及相机对入射光的敏感度等因素导致的误差而受到影响。在此,我们展示了一种基于智能手机的自参考便携式等离子体传感平台,该平台集成了内部参考样本以及一种图像处理方法来进行比色传感。本文展示了基于独特纳米等离子体现象的两种传感原理,这两种原理来自一种名为纳米LCA(纳米吕库古杯阵列)的纳米结构等离子体传感器,用于比色生化传感:液体折射率传感和光吸收增强传感。通过简单的智能手机成像和颜色分析来测量无色液体的折射率。在比色生化分析中,通过使等离子体共振波长与发色团的吸收峰波长匹配来实现光吸收增强。这种传感机制在微孔板读数器形式下将检测限(LoD)提高了100倍。与传统的比色分析(如尿液测试条)相比,智能手机等离子体增强比色传感系统的检测限提高了30倍。该平台被应用于模拟尿液测试,以精确识别蛋白质浓度较高的样本,这显示了智能手机等离子体共振传感系统在即时护理和肾脏疾病早期检测方面的潜力。

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