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A Streaming Flow Based Lab-on-Chip Platform Technology

机译:基于流式的基于流式的实验室平台技术

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Numerous studies on microfluidics diagnostic devices have been published in the last decade. Although the first generation of Lab-on-chip (LOC) devices was functional in 1999, some of the promises of microfluidics (integration of all functions on a chip and the commercialization of truly handheld microfluidic instruments) have yet to be fulfilled. The major challenges of LOC technology include cost-effective pumping, function integration, multiple detection, and system miniaturization. In this paper, we propose a novel and simple streaming-based LOC technology that may have potential to directly address these challenges. The phenomenon of the flow streaming is found in zero-mean velocity oscillating flows in a wide range of channel geometries. Although there is no net flow (zero-mean velocity) across the channel, a discrepancy in velocity profiles between the forward flow and backward flow causes fluid particles near the walls to drift toward one end, while fluid particles near the centerline drift to the other end. We hypothesize that the unique characteristics of flow streaming could be used: 1) to transport, mix and separate particles/molecules/bacterium/cells entrained in flows; 2) to perform multi-channel/generation micro-array sample distributions; and 3) to achieve function integrations and biomarker detections. Mechanisms of using flow streaming to achieve the various LOC functions are described. Preliminary results are presented to demonstrate the potential of this technology for LOC applications.
机译:在微流体诊断设备许多研究已经发表在过去的十年。虽然第一代实验室芯片(LOC)设备,1999年是功能性的,一些微流体的承诺(指芯片,真正的手持式仪器微的商业化上的所有功能集成)都还没有实现。 LOC技术的主要挑战包括高性价比的抽,功能集成,多个检测和系统小型化。在本文中,我们提出了一个新的和简单的基于流-LOC技术可能具有潜在的直接应对这些挑战。流动流的现象被发现在零均值速度振荡在一个宽范围的信道的几何形状的流动。虽然没有净流(零均值速度)穿过通道,在它们之间的速度分布的差异前向气流和后向气流引起的壁附近的流体颗粒朝向一端漂移,而靠近中心线漂移流体颗粒与其他结尾。我们推测这种流动流的独特特征可以用于:1)运输,混合和分离颗粒/分子/细菌在流动夹带/细胞; 2)以执行多通道/代微阵列样品分布;和3)来实现的功能的集成和生物标志物的检测。使用流动流以实现各种功能LOC的机制进行说明。初步结果都证明了这项技术的潜力LOC的应用。

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