论文标题
电动janus微型运动员在地形平坦的化学模式上移动
Electrokinetic Janus micromotors moving on topographically flat chemical patterns
论文作者
论文摘要
离子和分子选择性在纳米级被认为是独一无二的,而在微流体中不可实现。这是由于比例尺匹配的问题 - 很难与微米大小的约束匹配离子的尺寸和静电势筛选长度。在这里,我们证明了与离子通道或纳米流体连接中特有的离子传输过程的微观实现,包括选择性,通过复杂的几何形状和流动聚焦的指导。作为模型系统,我们探索电动球形janus微型运动器,在带电的表面上移动具有复杂的空间电荷分布,而没有任何地形壁。我们讨论了有关系统行为的远程静电相互作用的特殊性,包括从带负电荷的界面中的接口交叉和带正电的颗粒的反射。这些结果对于理解在限制下生化物种的电动转运至关重要,有可能提高基于芯片的实验室测定法的精度,并扩大纳米/微机械的用例和控制策略。
Ionic and molecular selectivity is considered unique for the nanoscale and not realizable in microfluidics. This is due to the scale-matching problem -- a difficulty to match the dimensions of ions and electrostatic potential screening lengths with the micron-sized confinements. Here, we demonstrate a microscale realization of the ionic transport processes closely resembling those specific to ionic channels or in nanofluidic junctions, including selectivity, guidance through complex geometries and flow focusing. As a model system, we explore electrokinetic spherical Janus micromotors moving over charged surfaces with a complex spatial charge distribution and without any topographical wall. We discuss peculiarities of the long-range electrostatic interaction on the behavior of the system including interface crossing and reflection of positively charged particles from negatively charged interfaces. These results are crucial for understanding the electrokinetic transport of biochemical species under confinement, have the potential to increase the precision of lab-on-chip-based assays, as well as broadening use cases and control strategies of nano-/micromachinery.