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Development of microfluidic analytical method for on-line gaseous Formaldehyde detection

机译:在线气态甲醛检测微流控分析方法的发展

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摘要

This paper reports on the development of a novel colorimetric analytical method based on microfluidic technologies for the detection of low airborne Formaldehyde concentrations, representative of those found in indoor air, i.e. 10-100 μg m~(-3). The new analytical technique operates according to 4 distinct steps: 1) gas sampling, 2) gaseous Formaldehyde uptake into the aqueous solution using an annular gas/liquid flow at room temperature, 3) derivatization reaction with acetylacetone solution at 65 ℃ producing 3,5-Diacetyl-1,4-dihydrolutidine (DDL) and 4) colorimetric DDL detection with a liquid-core-waveguide. Laboratory experiments were performed to determine the experimental conditions permitting to obtain a stable annular flow, i.e. a liquid flow rate above 5 μLmin~(-1) and gas to liquid flow rate ratios greater than 1000. Effects of liquid-core-waveguide of internal diameter and length were also investigated. Using liquid and gas flow rates of 35 μLmin~(-1) and 35 mLmin~(-1) respectively, the resulting uptake yield of gaseous Formaldehyde in aqueous solution was around 90% and the detection limit of gaseous Formaldehyde was 0.7μgm~(-3), which is consistent with the guideline values for indoor air. In addition, the low reagent consumption increases significantly the device autonomy up to 20 days with 1L of acetylacetone solution.
机译:本文报道了一种基于微流体技术的比色分析方法的开发,该方法用于检测低空气中甲醛浓度,代表室内空气中的低浓度甲醛浓度,即10-100μgm〜(-3)。新的分析技术按照以下四个不同的步骤进行操作:1)气体采样; 2)在室温下使用环形气/液流将甲醛气态吸收到水溶液中; 3)在65℃下与乙酰丙酮溶液进行衍生化反应,生成3,5 -用液体芯波导检测-Diacetyl-1,4-dihydrolutidine(DDL)和4)比色DDL检测。进行实验室实验以确定允许获得稳定环形流动的实验条件,即液体流量大于5μLmin〜(-1)且气液比大于1000。内部的液芯波导的影响直径和长度也进行了研究。分别使用液体和气体流速分别为35μLmin〜(-1)和35 mLmin〜(-1)时,水溶液中气态甲醛的吸收率约为90%,气态甲醛的检出限为0.7μgm〜( -3),与室内空气准则值一致。此外,使用1L乙酰丙酮溶液,低试剂消耗量可在20天之内显着提高设备的自主性。

著录项

  • 来源
    《Sensors and Actuators》 |2017年第5期|963-970|共8页
  • 作者单位

    Institut de Chimie et Procédé pour l'Energie, l'Environnement et la Santé (ICPEES, UMR 7515 CNRS/UdS), groupe physico-chimie de l'atmosphère, 25 rue Becquerel, 67087 Strasbourg Cedex 02, France,Institut Charles Sadron (ICS) - UPR 22 CNRS, groupe de Chimie Macromoléculaire de Précision (CMP), 23 rue du Loess. 67034 Strasbourg, France;

    Institut de Chimie et Procédé pour l'Energie, l'Environnement et la Santé (ICPEES, UMR 7515 CNRS/UdS), groupe physico-chimie de l'atmosphère, 25 rue Becquerel, 67087 Strasbourg Cedex 02, France,Institut Charles Sadron (ICS) - UPR 22 CNRS, groupe de Chimie Macromoléculaire de Précision (CMP), 23 rue du Loess. 67034 Strasbourg, France;

    Institut Charles Sadron (ICS) - UPR 22 CNRS, groupe de Chimie Macromoléculaire de Précision (CMP), 23 rue du Loess. 67034 Strasbourg, France,Université de Strasbourg, Ecole de Chimie, Polymères et Matériaux (ECPM), 25 rue Becquerel, 67087 Strasbourg, France;

    Institut de Chimie et Procédé pour l'Energie, l'Environnement et la Santé (ICPEES, UMR 7515 CNRS/UdS), groupe physico-chimie de l'atmosphère, 25 rue Becquerel, 67087 Strasbourg Cedex 02, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Formaldehyde; Microfluidics; Annular flow; Micro-device; Indoor air;

    机译:甲醛;微流体;环形流微型设备;室内空气;

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