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Design considerations for electrostatic microvalves with applications in poly(dimethylsiloxane)-based microfluidics

机译:静电微阀在基于聚二甲基硅氧烷的微流体中的设计注意事项

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摘要

Microvalves are critical in the operation of integrated microfluidic chips for a wide range of applications. In this paper, we present an analytical model to guide the design of electrostatic microvalves that can be integrated into microfluidic chips using standard fabrication processes and can reliably operate at low actuation potentials (<250 V). Based on the analytical model, we identify design guidelines and operational considerations for elastomeric electrostatic microvalves and formulate strategies to minimize their actuation potentials, while maintaining the feasibility of fabrication and integration. We specifically explore the application of the model to design microfluidic microvalves fabricated in poly(dimethylsiloxane), using only soft-lithographic techniques. We discuss the electrostatic actuation in terms of several microscale phenomena, including squeeze-film damping and adhesion-driven microvalve collapse. The actuation potentials predicted by the model are in good agreement with experimental data obtained with a microfabricated array of electrostatic microvalves actuated in air and oil. The model can also be extended to the design of peristaltic pumps for microfluidics and to the prediction of actuation potentials of microvalves in viscous liquid environments. Additionally, due to the compact ancillaries required to generate low potentials, these electrostatic microvalves can potentially be used in portable microfluidic chips.
机译:微型阀对于集成微流体芯片的广泛应用至关重要。在本文中,我们提供了一个分析模型来指导静电微阀的设计,该阀可以使用标准制造工艺集成到微流体芯片中,并且可以在低驱动电势(<250 V)下可靠地运行。基于分析模型,我们确定了弹性体静电微型阀的设计指南和操作注意事项,并制定了在保持制造和集成可行性的同时,将其致动电位降至最低的策略。我们专门探索该模型在仅使用软光刻技术设计聚(二甲基硅氧烷)制造的微流体微阀中的应用。我们根据几种微观现象来讨论静电致动,包括挤压膜阻尼和粘附力驱动的微型阀塌陷。该模型预测的致动电位与在空气和油中致动的静电微阀的微型阵列获得的实验数据高度吻合。该模型还可以扩展到用于微流体的蠕动泵的设计以及在粘性液体环境中预测微阀的致动电位。另外,由于产生低电势所需的紧凑附件,这些静电微阀可潜在地用于便携式微流体芯片中。

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