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Computational Study of pH-sensitive Hydrogel-based Microfluidic Flow Controllers

机译:pH敏感的基于水凝胶的微流体流量控制器的计算研究

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摘要

This computational study investigates the sensing and actuating behavior of a pH-sensitive hydrogel-based microfluidic flow controller. This hydrogel-based flow controller has inherent advantage in its unique stimuli-sensitive properties, removing the need for an external power supply. The predicted swelling behavior the hydrogel is validated with steady-state and transient experiments. We then demonstrate how the model is implemented to study the sensing and actuating behavior of hydrogels for different microfluidic flow channel/hydrogel configurations: e.g., for flow in a T-junction with single and multiple hydrogels. In short, the results suggest that the response of the hydrogel-based flow controller is slow. Therefore, two strategies to improve the response rate of the hydrogels are proposed and demonstrated. Finally, we highlight that the model can be extended to include other stimuli-responsive hydrogels such as thermo-, electric-, and glucose-sensitive hydrogels.
机译:这项计算研究调查了基于pH敏感的基于水凝胶的微流体流量控制器的传感和驱动行为。这种基于水凝胶的流量控制器在其独特的对刺激敏感的特性方面具有固有优势,从而无需外部电源。通过稳态和瞬态实验验证了水凝胶的预测溶胀行为。然后,我们演示了如何实施该模型以研究水凝胶对不同微流体流动通道/水凝胶配置的感测和驱动行为:例如,在具有单个和多个水凝胶的T型接头中的流动。简而言之,结果表明基于水凝胶的流量控制器的响应较慢。因此,提出并证明了两种改善水凝胶响应率的策略。最后,我们强调该模型可以扩展到包括其他刺激响应水凝胶,例如热,电和葡萄糖敏感水凝胶。

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