Physics and Astronomy Department G. Galileo, University of Padova, Via Marzolo 8, 35121 Padova, Italy.
Department of Chemistry, Institute of Condensed Matter Chemistry and Technologies for Energy (ICMATE), National Research Council (CNR), University of Padova, via Marzolo 1, 35131 Padova, Italy.
Sensors (Basel). 2020 Sep 19;20(18):5366. doi: 10.3390/s20185366.
The aim of Lab-on-a-chip systems is the downscaling of analytical protocols into microfluidic devices, including optical measurements. In this context, the growing interest of the scientific community in opto-microfluidic devices has fueled the development of new materials. Recently, lithium niobate has been presented as a promising material for this scope, thanks to its remarkable optical and physicochemical properties. Here, we present a novel microfluidic device realized starting from a lithium niobate crystal, combining engraved microfluidic channels with integrated and self-aligned optical waveguides. Notably, the proposed microfabrication strategy does not compromise the optical coupling between the waveguides and the microchannel, allowing one to measure the transmitted light through the liquid flowing in the channel. In addition, the device shows a high versatility in terms of the optical properties of the light source, such as wavelength and polarization. Finally, the developed opto-microfluidic system is successfully validated as a probe for real-time pH monitoring of the liquid flowing inside the microchannel, showing a high integrability and fast response.
微流控芯片系统的目标是将分析协议缩小到微流控设备中,包括光学测量。在这方面,科学界对光微流控设备越来越感兴趣,推动了新材料的发展。最近,铌酸锂因其出色的光学和物理化学性质而被认为是一种很有前途的材料。在这里,我们提出了一种新颖的微流控器件,它是从铌酸锂晶体开始实现的,将刻蚀的微流道与集成和自对准的光波导结合在一起。值得注意的是,所提出的微加工策略不会影响波导和微通道之间的光耦合,从而可以通过测量流过通道的液体来测量透射光。此外,该器件在光源的光学特性(如波长和偏振)方面具有很高的通用性。最后,所开发的光电微流控系统成功验证为实时监测微通道内流动液体的 pH 值的探头,具有很高的集成度和快速响应。