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Acoustic streaming vortices enable contactless, digital control of droplets

机译:声学流涡流使接触式无接触式,数字控制液滴

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摘要

Advances in lab-on-a-chip technologies are driven by the pursuit of programmable microscale bioreactors or fluidic processors that mimic electronic functionality, scalability, and convenience. However, few fluidic mechanisms allow for basic logic operations on rewritable fluidic paths due to cross-contamination, which leads to random interference between “fluidic bits” or droplets. Here, we introduce a mechanism that allows for contact-free gating of individual droplets based on the scalable features of acoustic streaming vortices (ASVs). By shifting the hydrodynamic equilibrium positions inside interconnected ASVs with multitonal electrical signals, different functions such as controlling the routing and gating of droplets on rewritable fluidic paths are demonstrated with minimal biochemical cross-contamination. Electrical control of this ASV-based mechanism allows for unidirectional routing and active gating behaviors, which can potentially be scaled to functional fluidic processors that can regulate the flow of droplets in a manner similar to the current in transistor arrays.
机译:通过追求可编程的微观生物反应器或流体处理器,可以推动实验室芯片技术的进展,这些生物反应器或流体处理器模仿电子功能,可扩展性和便利性。然而,由于交叉污染,很少有流体机制允许对可重写流体路径的基本逻辑操作,这导致“流体位”或液滴之间的随机干扰。这里,我们介绍一种机制,其允许基于声学流涡流(ASV)的可扩展特征来对各个液滴的无接触式栅极。通过将互联的ASV的互联的ASV的流体动力平衡位置与多层电信号移位,通过最小的生化交叉污染来说明诸如控制可重写流体路径上的液滴路由和液滴的路由和浇注的不同功能。这种基于ASV的机构的电气控制允许单向路由和主动门控行为,其可能缩放到功能流体处理器,其可以以类似于晶体管阵列中的电流的方式调节液滴的流动。

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