论文标题

自我销售胶体有限状态机器

Self-propelling colloidal finite state machines

论文作者

van Kesteren, Steven, Alvarez, Laura, Arrese-Igor, Silvia, Alegria, Angel, Isa, Lucio

论文摘要

用物理智能赋予材料是机器人系统进步的关键。尽管宏观设备的成功越来越大,但将这些概念转移到显微镜方面提出了与缺乏合适的制造和设计技术有关的几个挑战,以及将材料的特性与自主单元功能联系起来的内部响应方案。在这里,我们意识到自行量的胶体簇,这些群集表现为简单的有限状态机器,即构建的系统,该系统是具有通过可逆过渡连接并与不同功能相关联的有限内部状态。我们通过毛细管组件将硬聚苯乙烯胶体与两种不同类型的热反应微凝胶相结合。该簇是由空间均匀的交流电场驱动的,适应了它们的形状和介电特性,并因此通过可逆温度诱导的跃迁而受到光控制的过渡。两种微凝胶的不同过渡温度使三个不同的动力状态可以对应于三个照明强度水平。微凝胶的顺序重新配置会根据通过在组装过程中定制簇的几何形状定义的途径来影响活性轨迹的速度和形状。这些简单系统的演示表明了一条令人兴奋的途径,以更广泛的重新配置方案建立更复杂的单元,并对以胶体尺度的体力智能实现自主系统的多种响应。

Endowing materials with physical intelligence holds the key for a progress leap in robotic systems. In spite of the growing success for macroscopic devices, transferring these concepts to the microscale presents several challenges connected to the lack of suitable fabrication and design techniques, and of internal response schemes that connect the materials' properties to the function of an autonomous unit. Here, we realize self-propelling colloidal clusters which behave as simple finite state machines, i.e. systems built to possess a finite number of internal states connected by reversible transitions and associated to distinct functions. We produce these units via capillary assembly combining hard polystyrene colloids with two different types of thermo-responsive microgels. The clusters, actuated by spatially uniform AC electric fields, adapt their shape and dielectric properties, and consequently their propulsion, via reversible temperature-induced transitions controlled by light. The different transition temperatures for the two microgels enable three distinct dynamical states corresponding to three illumination intensity levels. The sequential reconfiguration of the microgels affects the velocity and shape of the active trajectories according to a pathway defined by tailoring the clusters' geometry during assembly. The demonstration of these simple systems indicates an exciting route to build more complex units with broader reconfiguration schemes and multiple responses towards the realization of autonomous systems with physical intelligence at the colloidal scale.

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