Institute of Organic Chemistry, Johannes Gutenberg-Universität Mainz, 55099 Mainz, Germany.
Nat Commun. 2012;3:1178. doi: 10.1038/ncomms2193.
Responsive polymers are low-cost, light weight and flexible, and thus an attractive class of materials for the integration into micromechanical and lab-on-chip systems. Triggered by external stimuli, liquid crystalline elastomers are able to perform mechanical motion and can be utilized as microactuators. Here we present the fabrication of one-piece micropumps from liquid crystalline core-shell elastomer particles via a microfluidic double-emulsion process, the continuous nature of which enables a low-cost and rapid production. The liquid crystalline elastomer shell contains a liquid core, which is reversibly pumped into and out of the particle by actuation of the liquid crystalline shell in a jellyfish-like motion. The liquid crystalline elastomer shells have the potential to be integrated into a microfluidic system as micropumps that do not require additional components, except passive channel connectors and a trigger for actuation. This renders elaborate and high-cost micromachining techniques, which are otherwise required for obtaining microstructures with pump function, unnecessary.
响应性聚合物具有低成本、重量轻、柔韧性好等特点,因此是一种很有吸引力的材料,可以集成到微机械和芯片实验室系统中。液晶弹性体在外部刺激的作用下能够进行机械运动,可作为微执行器使用。本文通过微流控双乳液工艺制备了由液晶核壳弹性体粒子组成的一体式微泵,其连续的特性使得生产成本低、生产速度快。液晶弹性体壳层中含有液体芯层,通过液晶壳层的水母状运动进行致动,可将液体芯层可逆地吸入和泵出粒子。液晶弹性体壳层有可能作为微泵集成到微流控系统中,而无需额外的组件,除了被动通道连接器和致动触发器。这使得原本需要用于获得具有泵送功能的微结构的复杂和高成本的微加工技术变得不必要。