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用于高分辨率成像的 PDMS/玻璃混合微流控芯片及其在亚波长粒子捕获中的应用。

Hybrid PDMS/glass microfluidics for high resolution imaging and application to sub-wavelength particle trapping.

机构信息

Institut de Physique de la Matière Condensée, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.

出版信息

Lab Chip. 2016 Feb 7;16(3):465-70. doi: 10.1039/c5lc01536g.

Abstract

We demonstrate the fabrication of a hybrid PDMS/glass microfluidic layer that can be placed on top of non-transparent samples and allows high-resolution optical microscopy through it. The layer mimics a glass coverslip to limit optical aberrations and can be applied on the sample without the use of permanent bonding. The bonding strength can withstand to hold up to 7 bars of injected pressure in the channel without leaking or breaking. We show that this process is compatible with multilayer soft lithography for the implementation of flexible valves. The benefits of this application is illustrated by optically trapping sub-wavelength particles and manipulate them around photonic nano-structures. Among others, we achieve close to diffraction limited imaging through the microfluidic assembly, full control on the flow with no dynamical deformations of the membrane and a 20-fold improvement on the stiffness of the trap at equivalent trapping power.

摘要

我们展示了一种混合 PDMS/玻璃微流控层的制造方法,该层可放置在不透明样品的顶部,并允许通过它进行高分辨率的光学显微镜观察。该层模拟玻璃盖玻片,以限制光学像差,并且可以在不使用永久粘合的情况下应用于样品。粘合强度可以承受通道中高达 7 巴的注入压力而不会泄漏或破裂。我们表明,该过程与多层软光刻兼容,可用于实现柔性阀。通过光学捕获亚波长颗粒并围绕光子纳米结构对其进行操作,说明了这种应用的好处。除此之外,我们通过微流控组件实现了接近衍射极限的成像,对流动的完全控制,没有膜的动态变形,并且在等效捕获功率下,捕获的刚度提高了 20 倍。

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