论文标题
具有内部反馈的可重新配置的人工微武器
Reconfigurable Artificial Microswimmers with Internal Feedback
论文作者
论文摘要
微米大小的自传颗粒通常被提出为生物微晶状体的合成模型,但它们缺乏内部调节的适应性,这对于其生物学对应物的自主权至关重要。相反,适应性和自主性可以用大规模的软射击设备进行编码,但是将这些能力转移到胶体尺度仍然难以捉摸。在这里,我们创建了一类新的响应式微武器,由诱导的电泳提供动力,可以通过内部反馈使其运动能力使其运动能力使其运动能力使其运动能力使外部刺激更加适应。使用顺序毛细管组件,我们制造了包含软热响应微粒的确定性胶体簇,在自发重新配置后,这些簇会引起运动性变化,例如簇的推进速度和其方向的逆转。我们根据粒子形状和介电特性的变化之间的耦合来合理化响应。利用这些策略可以通过简单的照明模式实现当地动力控制,从而为开发新的战术活动材料揭示了令人兴奋的机会。
Micron-size self-propelling particles are often proposed as synthetic models for biological microswimmers, yet they lack internally regulated adaptation, which is central to the autonomy of their biological counterparts. Conversely, adaptation and autonomy can be encoded in larger-scale soft-robotic devices, but transferring these capabilities to the colloidal scale remains elusive. Here, we create a new class of responsive microswimmers, powered by induced-charge electrophoresis, which can adapt their motility to external stimuli via an internal feedback. Using sequential capillary assembly, we fabricate deterministic colloidal clusters comprising soft thermoresponsive microparticles, which, upon spontaneous reconfiguration, induce motility changes, such as adaptation of the clusters' propulsion velocity and reversal of its direction. We rationalize the response in terms of a coupling between self-propulsion and variations of particle shape and dielectric properties. Harnessing those allows for strategies to achieve local dynamical control with simple illumination patterns, revealing exciting opportunities for the development of new tactic active materials.