Courant Institute, New York University, New York, New York 10012, USA.
Center for Computational Biology, Flatiron Institute, New York, New York 10010, USA.
Phys Rev Lett. 2019 Oct 25;123(17):178004. doi: 10.1103/PhysRevLett.123.178004.
We explore the behavior of micron-scale autophoretic Janus (Au/Pt) rods, having various Au/Pt length ratios, swimming near a wall in an imposed background flow. We find that their ability to robustly orient and move upstream, i.e., to rheotax, depends strongly on the Au/Pt ratio, which is easily tunable in synthesis. Numerical simulations of swimming rods actuated by a surface slip show a similar rheotactic tunability when varying the location of the surface slip versus surface drag. The slip location determines whether swimmers are pushers (rear actuated), pullers (front actuated), or in between. Our simulations and modeling show that pullers rheotax most robustly due to their larger tilt angle to the wall, which makes them responsive to flow gradients. Thus, rheotactic response infers the nature of difficult to measure flow fields of an active particle, establishes its dependence on swimmer type, and shows how Janus rods can be tuned for flow responsiveness.
我们探索了在强制背景流中靠近壁面游动的微尺度自推进 Janus(Au/Pt)棒的行为,这些棒具有不同的 Au/Pt 长度比。我们发现,它们能够稳定地定向并逆流而上,即进行趋流游动,这强烈依赖于 Au/Pt 比,而该比值在合成中很容易进行调节。通过表面滑移驱动游动棒的数值模拟表明,当改变表面滑移相对于表面阻力的位置时,趋流游动也具有类似的可调性。滑移位置决定了游泳者是推进器(后驱动)、拉曳器(前驱动)还是介于两者之间。我们的模拟和模型表明,拉曳器由于其与壁面的更大倾斜角度而最稳健地进行趋流游动,这使得它们对流动梯度有响应。因此,趋流反应推断出难以测量的活性粒子流场的性质,确定了它对游泳者类型的依赖性,并展示了如何调整 Janus 棒以实现对流动的响应。