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基于介孔二氧化硅基质中双酞菁镥的光纤二氧化氮传感器。

Optical Fibre NO₂ Sensor Based on Lutetium Bisphthalocyanine in a Mesoporous Silica Matrix.

作者信息

Debliquy Marc, Lahem Driss, Bueno-Martinez Antonio, Caucheteur Christophe, Bouvet Marcel, Recloux Isaline, Raskin Jean-Pierre, Olivier Marie-Georges

机构信息

Service de Science des Matériaux, Faculté Polytechnique, Université de Mons, 7000 Mons, Belgium.

Materia Nova, Materials R&D Centre, Parc Initialis, Avenue Nicolas Copernic 1, 7000 Mons, Belgium.

出版信息

Sensors (Basel). 2018 Mar 1;18(3):740. doi: 10.3390/s18030740.

Abstract

In this article, we describe a NO₂ sensor consisting of a coating based on lutetium bisphthalocyanine (LuPc₂) in mesoporous silica. The sensor exploits the absorption spectrum change of this material which strongly and reversibly decreases in contact with NO₂. NO₂ is measured by following the amplitude change in the reflected spectrum of the coating deposited on the tip of a silica fibre. As diffusion of NO₂ in LuPc₂ is slow, the response time could be slow. To reduce it, the active molecules are dispersed in a mesoporous silica matrix deposited by a sol-gel process (Evaporation Induced Self Assembly) avoiding the formation of large crystals. Doing so, the response is fairly fast. As the recovery is slow at room temperature, the recovery time is reduced by exposure to UV light at 365 nm. This UV light is directly introduced in the fibre yielding a practical sensor sensitive to NO₂ in the ppm range suitable for pollution monitoring.

摘要

在本文中,我们描述了一种二氧化氮传感器,它由基于双酞菁镥(LuPc₂)的涂层与介孔二氧化硅组成。该传感器利用了这种材料的吸收光谱变化,这种变化在与二氧化氮接触时会强烈且可逆地降低。通过跟踪沉积在二氧化硅光纤尖端的涂层反射光谱中的幅度变化来测量二氧化氮。由于二氧化氮在LuPc₂中的扩散很慢,响应时间可能会很慢。为了减少响应时间,活性分子分散在通过溶胶 - 凝胶工艺(蒸发诱导自组装)沉积的介孔二氧化硅基质中,避免形成大晶体。这样做时,响应相当快。由于在室温下恢复较慢,通过暴露在365 nm的紫外光下可缩短恢复时间。这种紫外光直接引入光纤中,从而产生一种对ppm范围内的二氧化氮敏感的实用传感器,适用于污染监测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c87/5876870/7608b724d61f/sensors-18-00740-g001.jpg

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