Department of Electrical Engineering, City University of Hong Kong, Kowloon, Hong Kong SAR.
Analyst. 2020 Nov 23;145(23):7752-7758. doi: 10.1039/d0an01469a.
This work describes a two-chip acoustofluidic platform for two-dimensional (2D) manipulation of microparticles in a closed microchamber on a reusable surface acoustic wave (SAW) device. This platform comprises two microfabricated chips: (1) a detachable silicon superstrate enclosed by a PDMS microfluidic chamber and (2) a reusable SAW device for generating standing SAW (SSAW), which is typically an expensive component. Critical to such a two-chip acoustofluidic platform is the selection of a suitable coupling agent at the interface of the SAW device and superstrate. To this end, we applied a polymer thin film as a coupling agent that balances between acoustic coupling efficiency, stability over time, and reusability. Recycling of the SAW device lowers the cost-barrier for acoustofluidic particle manipulation. The SSAW is transmitted into the silicon superstrate via the coupling agent to form a standing Lamb wave (SLW) to trap and move microparticles. The reported two-chip strategy enables the single-use microfluidic superstrates to avoid chemical and biological contaminations, while maintaining the merits of acoustofluidic manipulation of being noncontact and label-free and applicable to a wide range of microparticles with different shapes, density, polarity, and electrical properties.
这项工作描述了一种两芯片声流控平台,用于在可重复使用的表面声波(SAW)器件上的封闭微腔中二维(2D)操纵微颗粒。该平台由两个微加工芯片组成:(1)由 PDMS 微流控室封闭的可拆卸硅超结构,以及(2)用于产生驻波 SAW(SSAW)的可重复使用的 SAW 器件,通常这是一个昂贵的组件。对于这种两芯片声流控平台,关键是在 SAW 器件和超结构的界面上选择合适的耦合剂。为此,我们应用聚合物薄膜作为耦合剂,在声耦合效率、随时间的稳定性和可重复使用性之间取得平衡。SAW 器件的回收降低了声流控颗粒操纵的成本壁垒。SSAW 通过耦合剂传输到硅超结构中,形成驻波 Lamb 波(SLW)以捕获和移动微颗粒。所报道的两芯片策略使一次性微流控超结构能够避免化学和生物污染,同时保持声流控操纵的优点,即非接触和无标记,并且适用于具有不同形状、密度、极性和电特性的各种微颗粒。