Lu Zonghuan, McMahon Jay, Mohamed Hisham, Barnard David, Shaikh Tanvir R, Mannella Carmen A, Wagenknecht Terence, Lu Toh-Ming
Center for Integrated Electronics, Rensselaer Polytechnic Institute, Troy, NY 12180.
Sens Actuators B Chem. 2010 Jan 29;144(1):301-309. doi: 10.1016/j.snb.2009.10.036.
We report the investigation of a novel microfluidic mixing device to achieve submillisecond mixing. The micromixer combines two fluid streams of several microliters per second into a mixing compartment integrated with two T- type premixers and 4 butterfly-shaped in-channel mixing elements. We have employed three dimensional fluidic simulations to evaluate the mixing efficiency, and have constructed physical devices utilizing conventional microfabrication techniques. The simulation indicated thorough mixing at flow rate as low as 6 µL/s. The corresponding mean residence time is 0.44 ms for 90% of the particles simulated, or 0.49 ms for 95% of the particles simulated, respectively. The mixing efficiency of the physical device was also evaluated using fluorescein dye solutions and FluoSphere-red nanoparticles suspensions. The constructed micromixers achieved thorough mixing at the same flow rate of 6 µL/s, with the mixing indices of 96% ± 1%, and 98% ± 1% for the dye and the nanoparticle, respectively. The experimental results are consistent with the simulation data. The device demonstrated promising capabilities for time resolved studies for macromolecular dynamics of biological macromolecules.
我们报告了一种用于实现亚毫秒级混合的新型微流体混合装置的研究。该微混合器将每秒几微升的两股流体流合并到一个与两个T型预混合器和4个蝶形通道内混合元件集成的混合腔室中。我们采用三维流体模拟来评估混合效率,并利用传统微加工技术构建了物理装置。模拟表明,在低至6 μL/s的流速下可实现充分混合。对于90%的模拟颗粒,相应的平均停留时间为0.44 ms;对于95%的模拟颗粒,平均停留时间分别为0.49 ms。还使用荧光素染料溶液和FluoSphere红色纳米颗粒悬浮液评估了物理装置的混合效率。构建的微混合器在6 μL/s的相同流速下实现了充分混合,染料和纳米颗粒的混合指数分别为96%±1%和98%±1%。实验结果与模拟数据一致。该装置在生物大分子的大分子动力学时间分辨研究方面显示出有前景的能力。