Chen Peilong, Zhang Qiyi
Department of Physics and Center for Complex Systems, National Central University, Chungli 320, Taiwan.
Phys Rev E Stat Nonlin Soft Matter Phys. 2011 Nov;84(5 Pt 2):056309. doi: 10.1103/PhysRevE.84.056309. Epub 2011 Nov 15.
We present a dynamical analysis of chiral object motions to explain physical mechanisms and give quantitative predictions on the shear-induced drift motions of chiral objects and the chiral separation of enantiomers using shear flows. For objects well represented by the uniaxial approximation, such as DNA and chiral disk hexamers, dynamical motions in low-Reynolds-number shear flows are solved analytically, in terms of steady-state object-flow interacting parameters, which can be calculated numerically by well-established methods. The shear-induced drifting speed of long helices are evaluated. Good agreements are found between our results and those obtained from dynamical simulations [Makino and Doi, Phys. Fluids 17, 103605 (2005)]. We also compare our results with those obtained experimentally [Marcos, Fu, Powers, and Stocker, Phys. Rev. Lett. 102, 158103 (2009)]. The analysis may also be extended to study other important chiral-flow interactions in nature environments and microfluidic devices, such as the particle-wall and interparticle interactions.
我们对手性物体的运动进行了动力学分析,以解释其物理机制,并对使用剪切流时手性物体的剪切诱导漂移运动和对映体的手性分离给出定量预测。对于能用单轴近似很好描述的物体,如DNA和手性盘状六聚体,在低雷诺数剪切流中的动力学运动可根据稳态物体 - 流相互作用参数进行解析求解,这些参数可通过成熟方法进行数值计算。评估了长螺旋的剪切诱导漂移速度。我们的结果与通过动力学模拟获得的结果[牧野和土井,《物理流体》17, 103605 (2005)]之间取得了良好的一致性。我们还将我们的结果与通过实验获得的结果[马科斯、傅、鲍尔斯和斯托克,《物理评论快报》102, 158103 (2009)]进行了比较。该分析还可扩展到研究自然环境和微流体装置中的其他重要手性 - 流相互作用,如颗粒 - 壁相互作用和颗粒间相互作用。