Department of Mechanical Engineering and Materials Science, Center for Biologically Inspired Materials and Material Systems, Duke University, Durham, North Carolina 27708, USA.
Lab Chip. 2011 Dec 21;11(24):4214-20. doi: 10.1039/c1lc20683d. Epub 2011 Oct 28.
Here, we explore the single particle dynamics of superparamagnetic beads exposed to multifrequency ratchets. Through a combination of theory, simulation, and experiment, we determine the important tuning parameters that can be used to implement multiplexed separation of polydisperse colloidal mixtures. In particular, our results demonstrate that the ratio of driving frequencies controls the transition between open and closed trajectories that allow particles to be transported across a substrate. We also demonstrate that the phase difference between the two frequencies controls not only the direction of motion but also which particles are allowed to move within a polydisperse mixture. These results represent a fundamentally different approach to colloidal separation than the previous methods which are based on controlling transitions between phase-locked and phase-slipping regimes, and have a higher degree of multiplexing capabilities that can benefit the fields of biological separation and sensing as well as provide crucial insights into general ratchet behavior.
在这里,我们研究了超顺磁珠在多频棘轮作用下的单颗粒动力学。通过理论、模拟和实验的结合,我们确定了可用于实现多分散胶体混合物的复份分离的重要调谐参数。具体来说,我们的结果表明,驱动频率的比值控制着开和闭轨迹之间的转变,从而允许颗粒在基底上进行传输。我们还证明,两个频率之间的相位差不仅控制着运动的方向,而且控制着在多分散混合物中允许哪些颗粒移动。与以前基于控制锁定相和相滑相之间的转变的方法相比,这些结果代表了一种截然不同的胶体分离方法,具有更高的复份能力,可以使生物分离和传感领域受益,并为一般棘轮行为提供重要的见解。