Hamzah Hayder, Abduljabar Ali, Lees Jonathan, Porch Adrian
Engineering College, University of Al-Qadisiyah, Al-Qadisiyah, Diwaniyah 58001, Iraq.
Engineering College, University of Basrah, Basrah, Baghdad Street Qarmat Ali, IQ-61002, Iraq.
Sensors (Basel). 2018 Mar 19;18(3):910. doi: 10.3390/s18030910.
A miniaturized 2.4 GHz re-entrant cavity has been designed, manufactured and tested as a sensor for microfluidic compositional analysis. It has been fully evaluated experimentally with water and common solvents, namely methanol, ethanol, and chloroform, with excellent agreement with the expected behaviour predicted by the Debye model. The sensor's performance has also been assessed for analysis of segmented flow using water and oil. The samples' interaction with the electric field in the gap region has been maximized by aligning the sample tube parallel to the electric field in this region, and the small width of the gap (typically 1 mm) result in a highly localised complex permittivity measurement. The re-entrant cavity has simple mechanical geometry, small size, high quality factor, and due to the high concentration of electric field in the gap region, a very small mode volume. These factors combine to result in a highly sensitive, compact sensor for both pure liquids and liquid mixtures in capillary or microfluidic environments.
一种小型化的2.4GHz凹腔已被设计、制造并作为微流体成分分析传感器进行测试。它已使用水和常见溶剂(即甲醇、乙醇和氯仿)进行了全面的实验评估,与德拜模型预测的预期行为具有极好的一致性。该传感器的性能也已针对使用水和油的分段流分析进行了评估。通过使样品管与该区域的电场平行排列,使样品与间隙区域中的电场相互作用最大化,并且间隙的小宽度(通常为1毫米)导致高度局部化的复介电常数测量。凹腔具有简单的机械几何形状、小尺寸、高品质因数,并且由于间隙区域中电场的高度集中,模式体积非常小。这些因素共同作用,形成了一种对毛细管或微流体环境中的纯液体和液体混合物都高度敏感、紧凑的传感器。