功能选择:从化学合成原型到3D打印微设备

F. Bachmann, J. Giltinan, Agnese Codutti, S. Klumpp, M. Sitti, D. Faivre
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引用次数: 2

摘要

磁性微游泳器在生物医学和环境应用方面具有广阔的应用前景。细菌鞭毛激发的垂直磁化磁微螺旋目前被认为是低雷诺数下推进的标准,因为它们的动力学和可控性已经得到了很好的理解。这种系统的偏差最近出现了:具有非线性游动行为的随机形状磁性微螺旋桨在传感、分类和方向控制方面表现出了希望。当前3D微/纳米打印技术的发展允许任意3D微结构的生产,增加了复杂微螺旋桨形态的可访问的确定性设计空间。利用这一点,系统地再现了以前在筛选随机形状的螺旋桨时识别的形状。它的非线性行为,被称为频率诱导的游泳方向反转(FIRSD),允许螺旋桨仅通过改变施加的旋转场的频率就能朝相反的方向游泳。然而,相同形状的游泳者不仅表现出上述游泳特性,而且还表现出各种游泳行为,这些行为是由于其磁矩取向的差异而产生的。这不仅强调了形状在微游泳者行为中的作用,而且还强调了确定未来作为智能设备的微螺旋桨的磁性的重要性,因为具有不同磁矩的单一形状模板可以用于不同的操作模式。
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Selection for Function: From Chemically Synthesized Prototypes to 3D‐Printed Microdevices
Magnetic microswimmers are promising devices for biomedical and environmental applications. Bacterium flagella‐inspired magnetic microhelices with perpendicular magnetizations are currently considered standard for propulsion at low Reynolds numbers because of their well‐understood dynamics and controllability. Deviations from this system have recently emerged: randomly shaped magnetic micropropellers with nonlinear swimming behaviors show promise in sensing, sorting, and directional control. The current progresses in 3D micro/nanoprinting allow the production of arbitrary 3D microstructures, increasing the accessible deterministic design space for complex micropropeller morphologies. Taking advantage of this, a shape is systematically reproduced that was formerly identified while screening randomly shaped propellers. Its nonlinear behavior, which is called frequency‐induced reversal of swimming direction (FIRSD), allows a propeller to swim in opposing directions by only changing the applied rotating field's frequency. However, the identically shaped swimmers do not only display the abovementioned swimming property but also exhibit a variety of swimming behaviors that are shown to arise from differences in their magnetic moment orientations. This underlines not only the role of shape in microswimmer behavior but also the importance of determining magnetic properties of future micropropellers that act as intelligent devices, as single‐shape templates with different magnetic moments can be utilized for different operation modes.
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