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Improved Method for Kinetic Studies in Microreactors Using Flow Manipulation and Noninvasive Raman Spectrometry

机译:改进的流动反应和无创拉曼光谱研究微反应器动力学的方法

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摘要

A novel method has been devised to derive kinetic information about reactions in microfluidic systems. Advantages have been demonstrated over conventional procedures for a Knoevenagel condensation reaction in terms of the time required to obtain the data (fivefold reduction) and the efficient use of reagents (tenfold reduction). The procedure is based on a step change from a low (e.g., 0.6 μL min~(-1)) to a high (e.g., μL min~(-1)) flow rate and real-time noninvasive Raman measurements at the end of the flow line, which allows location-specific information to be obtained without the need to move the measurement probe along the microreactor channel. To validate the method, values of the effective reaction order n were obtained employing two different experimental methodologies. Using these values of n, rate constants fc were calculated and compared. The values of k derived from the proposed method at 10 and 40 °C were 0.0356 ± 0.0008 mol~03 dm~(0'9) s~(-1) (n = 1.3) and 0.24 ± 0.018 mol~(-0'1) dm~(0.3) s(-l) (n = l.l), respectively, whereas the values obtained using a more laborious conventional methodology were 0.0335 ± 0.0032 moL~(-0'4) dm~(1.2) s~(-l) (n = 1.4) at 10 °C and 0.244 ± 0.032 mol~(-0'3) dm~(0.9) s~(-1) (n = 1.3) at 40 °C. The new approach is not limited to analysis by Raman spectrometry and can be used with different techniques that can be incorporated into the end of the flow path to provide rapid measurements.
机译:已经设计出一种新颖的方法来推导有关微流体系统中反应的动力学信息。就获得数据所需的时间(减少五倍)和试剂的有效使用(减少十倍)而言,已经证明了相对于常规方法的Knoevenagel缩合反应的优势。该程序基于从低流速(例如,0.6μLmin〜(-1))到高流速(例如,μLmin〜(-1))的阶跃变化以及最终的实时无创拉曼测量流线,无需沿着微反应器通道移动测量探针即可获得特定位置的信息。为了验证该方法,采用两种不同的实验方法获得了有效反应阶数n的值。使用这些n值,计算并比较速率常数fc。在10°C和40°C下从该方法得出的k值为0.0356±0.0008 mol〜03 dm〜(0'9)s〜(-1)(n = 1.3)和0.24±0.018 mol〜(-0' 1)dm〜(0.3)s(-1)(n = ll),而使用更费力的常规方法获得的值为0.0335±0.0032 moL〜(-0'4)dm〜(1.2)s〜( -l)(n = 1.4)在10°C和0.244±0.032 mol〜(-0'3)dm〜(0.9)s〜(-1)(n = 1.3)在40°C时。新方法不仅限于通过拉曼光谱分析,还可以与可以整合到流路末端以提供快速测量的不同技术一起使用。

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  • 来源
    《Journal of the American Chemical Society》 |2011年第10期|p.3601-3608|共8页
  • 作者单位

    WestCHEM, Department of Pure and Applied Chemistry and CPACT, University of Strathclyde, 295 Cathedral Street,Glasgow Gl 1XL, United Kingdom;

    WestCHEM, Department of Pure and Applied Chemistry and CPACT, University of Strathclyde, 295 Cathedral Street,Glasgow Gl 1XL, United Kingdom;

    WestCHEM, Department of Pure and Applied Chemistry and CPACT, University of Strathclyde, 295 Cathedral Street,Glasgow Gl 1XL, United Kingdom;

    Chemtrix BV, Burgemeester Lemmensstraat 358, 6163JT Geleen, The Netherlands;

    Department of Chemistry, The University of Hull, Cottingham Road, Hull HU6 7RX, United Kingdom;

    Clairet Scientific Ltd., 17/18 Scirocco Close, Moulton Park Industrial Estate, Northampton NN3 6AP, United Kingdom;

    Department of Physics, University of Durham, South Road, Durham DH1 3LE, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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