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用于在纳秒时间尺度上混合液体的湍流切向微混合器的设计。

Design of turbulent tangential micro-mixers that mix liquids on the nanosecond time scale.

作者信息

Mitic Sandra, van Nieuwkasteele Jan W, van den Berg Albert, de Vries Simon

机构信息

Laboratory of Biotechnology, Delft University of Technology, 2628 BC Delft, The Netherlands.

BIOS/Lab-on-a-Chip group, MESA+ Institute for Nanotechnology and MIRA Institute for Biomedical Technology, University of Twente, 7500 AE Enschede, The Netherlands.

出版信息

Anal Biochem. 2015 Jan 15;469:19-26. doi: 10.1016/j.ab.2014.10.003. Epub 2014 Oct 16.

Abstract

Unravelling (bio)chemical reaction mechanisms and macromolecular folding pathways on the (sub)microsecond time scale is limited by the time resolution of kinetic instruments for mixing reactants and observation of the progress of the reaction. To improve the mixing time resolution, turbulent four- and two-jet tangential micro-mixers were designed and characterized for their mixing and (unwanted) premixing performances employing acid-base reactions monitored by a pH-sensitive fluorescent dye. The mixing performances of the micro-mixers were determined after the mixing chamber in a free-flowing jet. The premixing behavior in the vortex chamber was assessed in an optically transparent glass-silicon replica of a previously well-characterized stainless-steel four-jet tangential micro-mixer. At the highest flow rates, complete mixing was achieved in 160ns with only approximately 9% premixing of the reactants. The mixing time of 160ns is at least 50 times shorter than estimated for other fast mixing devices. Key aspects to the design of ultrafast turbulent micro-mixers are discussed. The integration of these micro-mixers with an optical flow cell would enable the study of the very onset of chemical reactions in general and of enzyme catalytic reactions in particular.

摘要

在(亚)微秒时间尺度上解析(生物)化学反应机制和大分子折叠途径,受到用于混合反应物和观察反应进程的动力学仪器的时间分辨率的限制。为了提高混合时间分辨率,设计了湍流四喷流和两喷流切向微混合器,并利用对pH敏感的荧光染料监测的酸碱反应,对其混合和(不需要的)预混合性能进行了表征。在自由流动射流中的混合室之后确定微混合器的混合性能。在一个先前已充分表征的不锈钢四喷流切向微混合器的光学透明玻璃-硅复制品中评估涡流室中的预混合行为。在最高流速下,在160纳秒内实现了完全混合,反应物的预混合仅约为9%。160纳秒的混合时间比其他快速混合装置估计的时间至少短50倍。讨论了超快湍流微混合器设计的关键方面。将这些微混合器与光学流通池集成,将能够研究一般化学反应的起始阶段,特别是酶催化反应的起始阶段。

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