Ma Jun, Wang Guanyu, Jin Long, Oh Kyunghwan, Guan Bai-Ou
Opt Express. 2019 Jul 8;27(14):19768-19777. doi: 10.1364/OE.27.019768.
The recent development of liquid-phase chemical analyses, drug delivery, and flow cytometry requires precise sensing and control of the liquid flow in a microfluidic chip environment. The channel in microfluidic chips is getting narrower to cope with complex liquid controls on a single chip, where small-footprint sensors and actuators are in urgent demand for accurate flow management. In this study, a unique microscopic bubble-on-fiber (BoF) device that can be readily integrated to current microfluidic chips was proposed and demonstrated for in situ sensing and control of microfluidic flow rate. The single microbubble was optically generated on the gold-deposited facet of an optical fiber by the local heating due to optical absorption. The BoF is a microscopic Fabry-Perot cavity, which serves as a thermal flow sensor precisely detecting the flow-induced temperature changes in the optical frequency domain. Experimentally we achieved the minimum detectable flow rate of ~0.06 mm/s in a single microfluidic channel, which is equivalent to a volume flow rate of 22 nL/s, and a response time of ~6 s. We also demonstrated that the BoF functioned as a microfluidic valve to regulate the flow rate in a Y-shape microfluidic chip by optically varying the bubble diameter. In addition to advantages of highly integrated functionalities and microscopic form factor, the proposed BoF can obviate the usage of chemical tracer such as dyes and can provide a high sensitivity over repeated flow cycles in a highly consistent manner. The BoF is promising for the timely development of high-density lab-on-a-chip devices using its efficient liquid flow management capability.
液相化学分析、药物递送和流式细胞术的最新发展需要在微流控芯片环境中对液体流动进行精确传感和控制。微流控芯片中的通道越来越窄,以应对单个芯片上复杂的液体控制,在这种情况下,迫切需要小尺寸的传感器和致动器来进行精确的流量管理。在本研究中,提出并展示了一种独特的光纤上微气泡(BoF)装置,该装置可轻松集成到当前的微流控芯片中,用于原位传感和控制微流控流速。通过光吸收引起的局部加热,在光纤的镀金端面上光学产生单个微气泡。BoF是一个微观法布里-珀罗腔,用作热流量传感器,可在光频域中精确检测流动引起的温度变化。实验中,我们在单个微流控通道中实现了约0.06 mm/s的最小可检测流速,这相当于22 nL/s的体积流速,响应时间约为6 s。我们还证明,BoF可作为微流控阀,通过光学改变气泡直径来调节Y形微流控芯片中的流速。除了具有高度集成功能和微观外形尺寸的优点外,所提出的BoF可以避免使用染料等化学示踪剂,并且可以在重复的流动循环中以高度一致的方式提供高灵敏度。BoF凭借其高效的液体流动管理能力,有望及时推动高密度芯片实验室设备的发展。