DAMTP, Centre for Mathematical Sciences, University of Cambridge, Wilberforce Road, Cambridge CB3 0WA, United Kingdom.
Center for Theoretical Biological Physics, Rice University, Houston, Texas 77030, USA.
Phys Rev Lett. 2019 Mar 1;122(8):088004. doi: 10.1103/PhysRevLett.122.088004.
The hydrodynamic theory of polar liquid crystals is widely used to describe biological active fluids as well as passive molecular materials. Depending on the "shear-alignment parameter", in passive or weakly active polar fluids under external shear, the polar order parameter p is either inclined to the flow at a fixed (Leslie) angle, or rotates continuously. Here, we study the role of an additional "shear-elongation parameter" that has been neglected in the recent literature and causes |p| to change under flow. We show that this effect can give rise to a shear-induced first-order phase transition from isotropic to polar, and significantly change the rheological properties of both active and passive polar fluids.
极性液体的流体动力学理论被广泛应用于描述生物活性流体和被动分子材料。取决于“剪切排列参数”,在外部剪切下的被动或弱活性极性流体中,极性有序参数 p 要么以固定(Leslie)角倾向于流动,要么连续旋转。在这里,我们研究了最近文献中忽略的附加“剪切伸长参数”的作用,该参数会导致流动下 |p| 发生变化。我们表明,这种效应可以导致从各向同性到极性的剪切诱导一级相变,并显著改变活性和被动极性流体的流变性质。