Laboratoire de Physique et Mécanique des Milieux Hétérogenes, UMR7636 CNRS, ESPCI, 10, Rue Vauquelin, 75231 Paris Cedex 05, France.
Anal Chem. 2010 Feb 15;82(4):1318-25. doi: 10.1021/ac902357b.
We propose a new separation scheme for micrometer-sized particles combining acoustic forces and gravitational field in split-flow lateral-transport thin (SPLITT)-like fractionation channels. Acoustic forces are generated by ultrasonic standing waves set up in the channel thickness. We report on the separation of latex particles of two different sizes in a preliminary experiment using this proposed hydrodynamic acoustic sorter, HAS. Total binary separation of 5 and 10 microm diameter particles has been achieved. Numerical simulations of trajectories of particles flowing through a step-SPLITT under the conditions which combine acoustic standing waves and gravity show a very good agreement with the experiment. Calculations in order to compare separations obtained by the acoustic programming s-SPLITT fractionation and the conventional SPLITT fractionation show that the improvement in separation time is around 1 order of magnitude and could still be improved; this is the major finding of this work. This separation technique can be extended to biomimetic particles and blood cells.
我们提出了一种新的微粒子分离方案,该方案结合了分裂流横向传输薄(SPLITT)样分馏通道中的声力和重力场。声力由通道厚度中建立的超声驻波产生。我们报告了使用这种拟议的流体动力声分选器(HAS)在初步实验中对两种不同尺寸的胶乳粒子的分离。已经实现了 5 和 10 微米直径粒子的完全二元分离。在结合声驻波和重力的条件下,通过台阶 SPLITT 流动的粒子轨迹的数值模拟与实验非常吻合。为了比较通过声编程 s-SPLITT 分馏和常规 SPLITT 分馏获得的分离,计算表明分离时间的改善约为 1 个数量级,并且仍然可以提高;这是这项工作的主要发现。这种分离技术可以扩展到仿生粒子和血细胞。