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Application of hydrophobic micropatterns to centrifugal fluid valve in flow channel

机译:疏水微模式在流道离心流体阀中的应用

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Optimizing the use of micro-flow channels as fluid control mechanisms is an effective means of increasing the sensitivity and selectivity of biosensors. The purpose of this study was to clarify the effectiveness of periodic structure applied to this type of fluid control mechanism to improve the hydrophobicity. We evaluated the functionality of centrifugal fluid valve with micrometer-sized periodic structure in the micro-flow channel. A disposable compact disc-based chip with centrifugal fluid valve was designed for this evaluation. The hydrophobic properties such as transferred volume ratio of the sample solution and the change in the transferred volume ratio with rotational velocity (slope) of the centrifugal fluid valve were investigated. In this case, parallel pillars showed higher hydrophobicity than cross-shaped pillars. The transferred volume ratio increased by 20% compared to that without a micro-periodic structure when a protein solution with a similar concentration to that in saliva and plasma was used. Additionally, a change in rotational velocity of only 49.3rpm was sufficient to switch a centrifugal fluid valve with parallel pillars, meaning that it makes it possible to have two critical rotation speeds when the fluid begins to move with a rotational velocity of 100rpm. It was shown that the static hydrophobicity dominates the switching characteristics in the proposed centrifugal fluid valve. Our study suggests that applying periodic structure to fluid control mechanisms is an effective means of realizing hydrophobic surfaces.
机译:优化使用微流通道作为流体控制机制是提高生物传感器的灵敏度和选择性的有效手段。这项研究的目的是阐明周期性结构应用于此类流体控制机制以改善疏水性的有效性。我们评估了微流通道中具有微米级周期性结构的离心流体阀的功能。针对此评估设计了带有离心式流体阀的基于一次性光盘的芯片。研究了样品溶液的转移体积比的疏水性以及随着离心流体阀的旋转速度(斜率)转移体积比的变化。在这种情况下,平行柱显示出比十字形柱更高的疏水性。当使用与唾液和血浆中浓度相似的蛋白质溶液时,与没有微周期结构的情况相比,转移体积比率增加了20%。此外,仅49.3rpm的转速变化就足以切换带有平行支柱的离心式流体阀,这意味着当流体以100rpm的转速开始运动时,它就有两个临界转速。结果表明,在所提出的离心流体阀中,静态疏水性主导着开关特性。我们的研究表明,将周期性结构应用于流体控制机制是实现疏水表面的有效手段。

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