Sensors and Biosensors Group, Department of Chemistry, Autonomous University of Barcelona , Edifici Cn, 08193 Bellaterra, Catalonia Spain.
Anal Chem. 2017 Sep 5;89(17):9147-9153. doi: 10.1021/acs.analchem.7b01889. Epub 2017 Aug 14.
In this work, the influence of laser ablation and lamination parameters in the fabrication of embedded microstructures using Low Temperature Co-Fired Ceramics, have been studied. First, the influence of laser ablation parameters in the dimensions of fabricated microchannels in Low Temperature Co-Fired Ceramics substrates was characterized and strategies for tailoring the microchannels aspect ratios are described. The influence of lamination conditions on the fabrication of monolithically embedded microstructures is presented. Thereafter, a ceramic microfluidic platform, was constructed using a multilayer approach. The ceramic microfluidic platforms incorporate three independent inlet channels and a microfluidic chamber with an monolithically integrated transparent optical windows. The construction procedure used ensures monolithic ceramic devices with homogeneous surface chemistry as well as homogeneous physical properties. Fluorescence dyes were used in order to characterize the hydrodynamic focusing as a function of flow rate ratio of the microfluidic chamber inlets. The results obtained open the possibility of studying chemical process, in static or flow conditions using fluorescence imaging, within the traditional fields of LTCC technology, such as high-temperature or organic solvents applications, while using a simple fabrication procedure suitable for low cost mass production.
在这项工作中,研究了使用低温共烧陶瓷(Low Temperature Co-Fired Ceramics,LTCC)制造嵌入式微结构时激光烧蚀和层压参数的影响。首先,研究了激光烧蚀参数对低温共烧陶瓷基板中制造的微通道尺寸的影响,并描述了定制微通道纵横比的策略。介绍了层压条件对整体嵌入式微结构制造的影响。此后,使用多层方法构建了陶瓷微流控平台。陶瓷微流控平台包含三个独立的入口通道和一个带有整体集成透明光学窗口的微流控室。所使用的构建程序确保了具有均匀表面化学性质和均匀物理性质的整体陶瓷器件。使用荧光染料来表征微流控室入口处的流动速率比作为流动聚焦的函数。所获得的结果为在传统的 LTCC 技术领域(如高温或有机溶剂应用)中使用荧光成像研究化学过程提供了可能性,同时使用适合低成本大规模生产的简单制造工艺。