Department of Mechanical Engineering and Material Science, Duke University, Durham, NC 27708, USA.
Nicholas School of the Environment, Duke University, Durham, NC 27708, USA.
Lab Chip. 2019 Jul 21;19(14):2404-2414. doi: 10.1039/c9lc00340a. Epub 2019 Jun 26.
Over the past several decades, a litany of acoustofluidic devices have been developed which purport to have significant advantages over traditional benchtop analytical tools. These acoustofluidic devices are frequently labeled as "labs-on-chips"; however, many do an insufficient job of limiting their dependence on the lab. Often, acoustofluidic devices still require skilled operators and complex external equipment. In an effort to address these shortcomings, we developed a low-cost, expandable, and multifunctional system for controlling acoustofluidic devices in the audible to low ultrasonic frequency range (31 Hz to 65 kHz). The system was designed around the readily available Arduino prototyping platform because of its user-friendly coding environment and expansive network of open source material; these factors enabled us to create a system capable of generating high voltage oscillatory signals and controlling microscale flows in acoustofluidic devices. Utilizing the established open source system, we achieved a series of acoustofluidic applications involving the manipulation of fluids and biological objects in a portable fashion. In particular, we used our open source acoustofluidic devices to achieve active rotation of cells and microorganisms, and operation of an acoustofluidic mixing device which has previously shown potential for viscous sample preparation, in a portable fashion. Additionally, using low frequency flexural waves and our portable system, we achieved acoustofluidic separation of particles based on size. It is our hope that the open source platform presented here can pave the way for future acoustofluidic devices to be used at the point-of-care, as well as simplify the operation of these devices to enable resource limited users to leverage the benefits of acoustofluidics in their work.
在过去的几十年中,已经开发出了许多声流控设备,这些设备据称具有比传统台式分析工具更大的优势。这些声流控设备通常被标记为“芯片实验室”;然而,许多设备并没有充分减少对实验室的依赖。通常,声流控设备仍然需要熟练的操作人员和复杂的外部设备。为了解决这些缺点,我们开发了一种低成本、可扩展和多功能的系统,用于控制可听至低频超声范围内(31Hz 至 65kHz)的声流控设备。该系统是围绕现成的 Arduino 原型平台设计的,因为它具有用户友好的编码环境和广泛的开源材料网络;这些因素使我们能够创建一个能够产生高压振荡信号并控制声流控设备中微尺度流动的系统。利用已建立的开源系统,我们实现了一系列声流控应用,涉及以便携式方式操纵流体和生物物体。特别是,我们使用我们的开源声流控设备以便携式方式实现了细胞和微生物的主动旋转,以及声流控混合设备的操作,该设备先前显示出在粘性样品制备方面的潜力。此外,我们使用低频弯曲波和我们的便携式系统,根据尺寸实现了基于声流的颗粒分离。我们希望这里提出的开源平台可以为未来在医疗点使用的声流控设备铺平道路,并简化这些设备的操作,使资源有限的用户能够在工作中利用声流控的优势。