Microfluidic Analytical System with On-Line Luminol Chemiluminescence Detection Based on Annular Flow of Phase Separation Multiphase Flow — Oak Academic Publishing
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Microfluidic Analytical System with On-Line Luminol Chemiluminescence Detection Based on Annular Flow of Phase Separation Multiphase Flow
Department of Chemical Engineering and Materials Science, Faculty of Science and Engineering, Doshisha University, Kyotanabe, Japan
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Department of Chemical Engineering and Materials Science, Faculty of Science and Engineering, Doshisha University, Kyotanabe, Japan
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Bio-Microfluidic Science Research Center, Doshisha University, Kyotanabe, Japan
1 Department of Chemical Engineering and Materials Science, Faculty of Science and Engineering, Doshisha University, Kyotanabe, Japan
2 Department of Chemical Engineering and Materials Science, Faculty of Science and Engineering, Doshisha University, Kyotanabe, Japan
3 Bio-Microfluidic Science Research Center, Doshisha University, Kyotanabe, Japan
Microfluidic analytical system was developed based on annular flow of phase separation multiphase flow with a ternary water-hydrophilic/hydrophobic organic solvent solution. The analytical system was combined with on-line luminol chemiluminescence detection for catechin analysis. The water (10 mM phosphate buffer, pH 7.3)-acetonitrile-ethyl acetate mixed solution (3:8:4, volume ratio) containing 60 μM luminol and 2 mM hydrogen peroxide as a carrier was fed into the capillary tube (open-tubular fused-silica, 75 μm inner diameter, 110 cm effective length) at a flow rate of 1.0 μL · min -1 . The carrier solution showed stable chemiluminescence as a baseline on the flow chart. Eight catechins were detected as negative peaks for their antioxidant potential with different detection times. The system was applied to analyze the amounts of catechin in commercially available green tea beverages.
Bird, R.B., Stewart, W.E. and Lightfoot, E.N. (2002) Shell Momentum Balances and Velocity Distribution in Laminar Flow. Transport Phenomena, Wiley, Toronto.
Tsuda, T. (1987) Electrochromatography Using High Applied Voltage. Analytical Chemistry, 59, 521-523. https://doi.org/10.1021/ac00130a032
Terabe, S., Otsuka, K., Ichikawa, K., Tsuchiya, A. and Ando, T. (1984) Electrokinetic Separations with Micellar Solutions and Open-Tubular Capillaries. Analytical Chemistry, 56, 111-113. https://doi.org/10.1021/ac00265a031
Small, H. (1974) Hydrodynamic Chromatography. A Technique for Size Analysis of Colloidal Particles. Journal of Colloid and Interface Science, 48, 147-161. https://doi.org/10.1016/0021-9797(74)90337-3
Jovanovic, J., Rebrov, E.V., Nijhuis, T.A.X., Kretzer, M.T., Hessel, V. and Schouten, J.C. (2012) Liquid-Liquid Flow in a Capillary Microreactor: Hydrodynamic Flow Patterns and Extraction Performance. Industrial & Engineering Chemistry Research, 51, 1015-1026. https://doi.org/10.1021/ie200715m
Ami, T., Awata, K., Umekawa, H. and Ozawa, M. (2012) Flow Characteristics of Oil-Water Mixture in Horizontal Mini-Channel (Influence of Inner Diameter and Geometry of Mixer). Japanese Journal of Multiphase Flow, 26, 302-311. https://doi.org/10.3811/jjmf.26.302
Yang, W., Lee, K.K. and Choi, S. (2017) A Laminar-Flow Based Microbial Fuel Cell Array. Sensors and Actuators, B: Chemical, 243, 292-297. https://doi.org/10.1016/j.snb.2016.11.155
Li, J., Mittal, N., Mak, S.Y., Song, Y. and Shum, H.C. (2015) Perturbation-Induced Droplets for Manipulating Droplet Structure and Configuration in Microfluidics. Journal of Micromechanics and Microengineering, 25, 084009/1-084009/12. https://doi.org/10.1088/0960-1317/25/8/084009
Sinzato, Y.Z., Sousa, D., Nuno Jorge, J. and Francisco, R. (2017) An Experimental Investigation of the Interfacial Tension Between Liquid-Liquid Mixtures in the Presence of Surfactants. Experimental Thermal and Fluid Science, 85, 370-378. https://doi.org/10.1016/j.expthermflusci.2017.03.011
Jinno, N., Itano, M., Hashimoto, M. and Tsukagoshi, K. (2009) Capillary Chromatography Based on Tube Radial Distribution of Aqueous-Organic Mixture Carrier Solvents. Talanta, 79, 1348-1353. https://doi.org/10.1016/j.talanta.2009.06.001
Murakami, M., Jinno, N., Hashimoto, M. and Tsukagoshi, K. (2011) Tube Radial Distribution Phenomenon of Ternary Mixed Solvents in a Microspace under Laminar Flow Conditions. Analytical Sciences, 27, 793-798. https://doi.org/10.2116/analsci.27.793
Jinno, N., Murakami, M., Mizohata, K., Hashimoto, M. and Tsukagoshi, K. (2011) Fluorescence Observation Supporting Capillary Chromatography Based on Tube Radial Distribution of Carrier Solvents under Flow Conditions. Analyst, 135, 927-932. https://doi.org/10.1039/C0AN00820F
Nagatani, K., Shihata, Y., Matsushita, T. and Tsukagoshi, K. (2016) Tube Radial Distribution Flow Separation in a Microchannel Using an Ionic Liquid Aqueous Two-Phase System Based on Phase Separation Multi-Phase Flow. Analytical Sciences, 32, 1371-1374. https://doi.org/10.2116/analsci.32.1371
Tsukagoshi, K. (2015) Investigation of Specific Microfluidic Flow with Two-Phase Separation Mixed Solvent Solutions and Application to Flow Technology. Journal of Flow Injection Analysis, 32, 89-95.
Tsukagoshi, K. (2014) Fundamental Research and Application of the Specific Fluidic Behavior of Mixed Solvents in a Microspace. Analytical Science, 30, 65-73. https://doi.org/10.2116/analsci.30.65
Fujinaga, S., Hashimoto, M., Tsukagoshi, K. and Mizushima, J. (2015) Consideration of Tube Radial Distribution Phenomenon under Laminar Flow Conditions Based on the Weber Number. Journal of Chemical Engineering of Japan, 48, 947-952. https://doi.org/10.1252/jcej.15we039
Fujinaga, S., Hashimoto, M., Tsukagoshi, K. and Mizushima, J. (2016) Consideration of Inner and Outer Phase Configuration in Tube Radial Distribution Phenomenon Based on Viscous Dissipation in a Microfluidic Flow Using Various Types of Mixed Solvent Solutions. Analytical Sciences, 32, 455-461. https://doi.org/10.2116/analsci.32.455
Shah, S.N.A., Zheng, Y., Li, H. and Lin, J.-M. (2016) Chemiluminescence Character of ZnS Quantum Dots with Bisulphite-Hydrogen Peroxide System in Acidic Medium. Journal of Physical Chemistry C, 120, 9308-9316. https://doi.org/10.1021/acs.jpcc.6b01925
Cao, Y., Sui, D., Zhou, W. and Lu, C. (2016) Highly Selective Chemiluminescence Detection of Hydroxyl Radical via Increased-Electron Densities of Rhodamine B on Montmorillonite Matrix. Sensors and Actuators, B: Chemical, 225, 600-606.
Hara, T. and Tsukagoshi, K. (1990) Chemiluminescence Analysis of Biological Constituents Using Metal-Complex Catalysts. A Review. Analytical Sciences, 6, 797-806. https://doi.org/10.2116/analsci.6.797
Tsukagoshi, K., Nakahama, K. and Nakajima, R. (2004) Direct Detection of Biomolecules in a Capillary Electrophoresis-Chemiluminescence Detection System. Analytical Chemistry, 76, 4410-4415. https://doi.org/10.1021/ac030344i
Shoji, A., Yanagida, A., Shindo, H. and Shibusawa, Y. (2004) Comparison of Elution Behavior of Catechins in High-Performance Liquid Chromatography with That on High-Speed Countercurrent Chromatography. Bunseki Kagaku, 53, 953. https://doi.org/10.2116/bunsekikagaku.53.953