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首页> 外文期刊>Nature Communications >Microfluidic control over topological states in channel-confined nematic flows
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Microfluidic control over topological states in channel-confined nematic flows

机译:通道限制向甲型流动中的拓扑状态的微流体控制

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Compared to isotropic liquids, orientational order of nematic liquid crystals makes their rheological properties more involved, and thus requires fine control of the flow parameters to govern the orientational patterns. In microfluidic channels with perpendicular surface alignment, nematics discontinuously transition from perpendicular structure at low flow rates to flow-aligned structure at high flow rates. Here we show how precise tuning of the driving pressure can be used to stabilize and manipulate a previously unresearched topologically protected chiral intermediate state which arises before the homeotropic to flow-aligned transition. We characterize the mechanisms underlying the transition and construct a phenomenological model to describe the critical behaviour and the phase diagram of the observed chiral flow state, and evaluate the effect of a forced symmetry breaking by introduction of a chiral dopant. Finally, we induce transitions on demand through channel geometry, application of laser tweezers, and careful control of the flow rate.
机译:与各向同性液体相比,向列液晶的定向顺序使其更加流变性能,因此需要对流动参数进行微量控制来控制定义模式。在具有垂直表面对准的微流体通道中,线虫在低流量速率下不连续地从垂直结构过渡到高流量速率的流动对准​​结构。在这里,我们示出了驾驶压力的精确调谐如何用于稳定和操纵先前未进行的拓扑上未进行的拓扑保护的手性中间状态,其在讨论之前产生的流动转变。我们表征了过渡地下的机制,构建了一种描述了观察到的手性流动状态的关键行为和相图,评价了通过引入手性掺杂剂的强制对称破裂的效果。最后,我们通过沟道几何形状,激光镊子应用,仔细控制流速来诱导转型。

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