School of Mechatronics Engineering, Harbin Institute of Technology , Harbin 150001, China.
Department of Mechanical Engineering and Material Science, Duke University , Durham, North Carolina 27708, United States.
ACS Nano. 2017 Oct 24;11(10):10591-10598. doi: 10.1021/acsnano.7b06107. Epub 2017 Sep 18.
Rheotaxis is a common phenomenon in nature that refers to the directed movement of micro-organisms as a result of shear flow. The ability to mimic natural rheotaxis using synthetic micro/nanomotors adds functionality to enable their applications in biomedicine and chemistry. Here, we present a hybrid strategy that can achieve both positive and negative rheotaxis of synthetic bimetallic micromotors by employing a combination of chemical fuel and acoustic force. An acoustofluidic device is developed for the integration of the two propulsion mechanisms. Using acoustic force alone, bimetallic microrods are propelled along the bottom surface in the center of a fluid channel. The leading end of the microrod is always the less dense end, as established in earlier experiments. With chemical fuel (HO) alone, the microrods orient themselves with their anode end against the flow when shear flow is present. Numerical simulations confirm that this orientation results from tilting of the microrods relative to the bottom surface of the channel, which is caused by catalytically driven electro-osmotic flow. By combining this catalytic orientation effect with more powerful, density-dependent acoustic propulsion, both positive and negative rheotaxis can be achieved. The ability to respond to flow stimuli and collectively propel synthetic microswimmers in a directed manner indicates an important step toward practical applications.
趋流性是自然界中一种常见的现象,指的是微生物由于切变流而产生的定向运动。通过使用合成微/纳米马达来模拟自然趋流性,可以增加其在生物医学和化学中的应用功能。在这里,我们提出了一种混合策略,通过结合化学燃料和声波力,可以实现双金属微米马达的正向和负向趋流性。我们开发了一种声流装置来整合这两种推进机制。仅使用声波力,双金属微棒就在流体通道中心的底部表面上沿一个方向推进。如早期实验所示,微棒的前端始终是密度较小的一端。仅使用化学燃料(HO)时,当存在切变流时,微棒会将其阳极端朝向流动方向定向。数值模拟证实,这种定向是由于微棒相对于通道底部表面倾斜造成的,这是由催化驱动的电渗流引起的。通过将这种催化定向效应与更强大的、密度依赖性的声波推进相结合,可以实现正向和负向的趋流性。对流动刺激做出反应并以定向方式集体推进合成微型游泳者的能力表明朝着实际应用迈出了重要的一步。