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基于多孔硅光子晶体的光学鼻,其内部浸润有离子液体。

Optical nose based on porous silicon photonic crystal infiltrated with ionic liquids.

机构信息

Institute of Microanalytical System, Department of Chemistry, Zhejiang University, Hangzhou, 3100058, China; Zhejiang Academy of Medical Sciences, Hangzhou, 310013, China.

Institute of Microanalytical System, Department of Chemistry, Zhejiang University, Hangzhou, 3100058, China.

出版信息

Anal Chim Acta. 2017 Feb 8;953:71-78. doi: 10.1016/j.aca.2016.11.053. Epub 2016 Dec 3.

Abstract

A photonic-nose for the detection and discrimination of volatile organic compounds (VOCs) was constructed. Each sensing element on the photonic sensor array was formed by infiltrating a specific type of ionic liquid (IL) into the pore channel of a patterned porous silicon (PSi) chip. Upon exposure to VOC, the density of IL dramatically decreased due to the nano-confinement effect. As a result, the IL located in pore channel expanded its volume and protrude out of the pore channel, leading to the formation of microdroplets on the PSi surface. These VOC-stimulated microdroplets could scatter the light reflected from the PSi rugate filter, thereby producing an optical response to VOC. The intensity of the optical response produced by IL/PSi sensor mainly depends on the size and shape of microdroplets, which is related to the concentration of VOC and the physi-chemical propertied of ILs. For ethanol vapor, the optical response has linear relationship with its relative vapor pressure within 0-60%. The LOD of the IL/PSi sensor for ethanol detection is calculated to be 1.3 ppm. It takes around 30 s to reach a full optical response, while the time for recovery is less than 1 min. In addition, the sensor displayed good stability and reproducibility. Owing to the different molecular interaction between IL and VOC, the ILs/PSi sensor array can generate a unique cross-reactive "fingerprint" in response to a specific type of VOC analyte. With the assistance of image technologies and principle components analysis (PCA), rapid discrimination of VOC analyte could be achieved based on the pattern recognition of photonic sensor array. The technology established in this work allows monitoring in-door air pollution in a visualized way.

摘要

构建了用于检测和区分挥发性有机化合物 (VOC) 的光子鼻。光子传感器阵列上的每个传感元件由将特定类型的离子液体 (IL) 渗透到图案化多孔硅 (PSi) 芯片的孔道中形成。暴露于 VOC 时,由于纳米限制效应,IL 的密度会急剧降低。结果,位于孔道中的 IL 扩展其体积并从孔道中突出,导致 PSi 表面形成微液滴。这些 VOC 刺激的微液滴可以散射从 PSi 波纹滤光片反射的光,从而对 VOC 产生光学响应。由 IL/PSi 传感器产生的光学响应的强度主要取决于微液滴的大小和形状,这与 VOC 的浓度和 IL 的物理化学性质有关。对于乙醇蒸气,光学响应与相对蒸气压力在 0-60%范围内呈线性关系。计算出 IL/PSi 传感器对乙醇检测的 LOD 为 1.3 ppm。达到全光学响应大约需要 30 秒,而恢复时间不到 1 分钟。此外,该传感器表现出良好的稳定性和重现性。由于 IL 与 VOC 之间的分子相互作用不同,IL/PSi 传感器阵列可以对特定类型的 VOC 分析物产生独特的交叉反应“指纹”。借助图像技术和主成分分析 (PCA),可以根据光子传感器阵列的模式识别实现对 VOC 分析物的快速区分。这项工作中建立的技术允许以可视化的方式监测室内空气污染。

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