用于生物流体的片上粘弹性传感器。

IF 10.5 Q1 ENGINEERING, BIOMEDICAL
Qianbin Zhao, Sheng Yan, Boran Zhang, Kai Fan, Jun Zhang, Weihua Li
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引用次数: 3

摘要

在我们的日常生活中有很多非牛顿流体,如牛奶、血液、细胞质、粘液等,它们大多是粘弹性的非均匀液体,含有细胞、无机离子、代谢物、激素等。在微流控微颗粒操纵应用中,目标颗粒实际上分布在血液和尿液等生物流体中。生物流体的粘弹性经常被简单地忽略,特别是当流体被大量稀释并且含有相当复杂的成分时。然而,即使流体的超弱粘弹性也会影响微粒的迁移,并可能带来与牛顿流体完全不同的行为。因此,在许多研究和工业领域,包括分析样品制备,临床诊断和片上传感器,一个强大且易于操作的片上粘弹性传感器是潜在的和需要的。在这项工作中,我们使用不同浓度的稳定非牛顿流体-聚乙烯氧化物(PEO)溶液来研究和校准弱流体粘弹性对双层微流体通道中微粒行为的影响。建立了用于粘弹性传感和松弛时间测量的模拟流态数据库。然后,我们对血浆和胎牛血清等不同的生物液体进行了测试,证明它们与相应浓度的PEO溶液具有相似的粘弹性效应,这与文献中已有的结果一致。弛豫时间的检测限可达1 ms。它承诺了一种鲁棒和集成的芯片微流体粘弹性传感器,可用于不同的生物流体,而无需复杂的计算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

An On-Chip Viscoelasticity Sensor for Biological Fluids.

An On-Chip Viscoelasticity Sensor for Biological Fluids.

An On-Chip Viscoelasticity Sensor for Biological Fluids.

An On-Chip Viscoelasticity Sensor for Biological Fluids.

There are so many non-Newtonian fluids in our daily life, such as milk, blood, cytoplasm, and mucus, most of which are viscoelastic heterogeneous liquid containing cells, inorganic ion, metabolites, and hormones. In microfluidic microparticle-manipulating applications, the target particles are practically distributed within the biological fluids like blood and urine. The viscoelasticity of biological fluid is constantly ignored for simplicity especially when the fluid is substantially diluted and contains rather complex components. However, even the fluid's ultraweak viscoelasticity actually affects the microparticle migration and may bring a completely different behavior compared with the Newtonian fluids. As a result, a robust and easy operated on-chip viscoelasticity sensor is potential and desired in many research and industrial fields, including assay sample preparation, clinical diagnostics, and on-chip sensor. In this work, we employed stable non-Newtonian fluid-polyethylene oxide (PEO) solutions with various concentrations to investigate and calibrate effects of the weak fluidic viscoelasticity on microparticle behaviors in a double-layered microfluidic channel. An analogy-based database of fluidic patterns for viscoelasticity sensing and relaxation time measurement was established. Then, we tested different biological fluids including blood plasma and fetal bovine serum and proved that they exhibited similar viscoelasticity effects to the PEO solutions with the corresponding concentration, which reached a good agreement with available results by references. The detection limitation of relaxation time can reach 1 ms. It promised a robust and integrated on-chip microfluidic viscoelasticity sensor for different biological fluids without complicated calculations.

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来源期刊
CiteScore
7.70
自引率
0.00%
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审稿时长
21 weeks
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