Quantitative Analysis of Molecular Interaction in a Microfluidic Channel: The T-Sensor
- 28 October 1999
- journal article
- research article
- Published by American Chemical Society (ACS) in Analytical Chemistry
- Vol. 71 (23), 5340-5347
- https://doi.org/10.1021/ac990504j
Abstract
The T-sensor is a recently developed microfluidic chemical measurement device that exploits the low Reynolds number flow conditions in microfabricated channels. The interdiffusion and resulting chemical interaction of components from two or more input fluid streams can be monitored optically, allowing measurement of analyte concentrations on a continuous basis. In a simple form of T-sensor, the concentration of a target analyte is determined by measuring fluorescence intensity in a region where the analyte and a fluorescent indicator have interdiffused. An analytical model has been developed that predicts device behavior from the diffusion coefficients of the analyte, indicator, and analyte−indicator complex and from the kinetics of the complex formation. Diffusion coefficients depend on the local viscosity which, in turn, depends on local concentrations of all analytes. These relationships, as well as reaction equilibria, are often unknown. A rapid method for determining these unknown parameters by interpreting T-sensor experiments through the model is presented.Keywords
This publication has 13 references indexed in Scilit:
- Microfabrication Inside Capillaries Using Multiphase Laminar Flow PatterningScience, 1999
- Microfluidic Diffusion-Based Separation and DetectionScience, 1999
- Automated Frit Inlet/Frit Outlet Flow Field-Flow Fractionation for Protein Characterization with Emphasis on Polymeric Wheat ProteinsAnalytical Chemistry, 1998
- Crystal structure of human serum albumin complexed with fatty acid reveals an asymmetric distribution of binding sitesNature Structural & Molecular Biology, 1998
- Microfabricated Silicon Mixers for Submillisecond Quench-Flow AnalysisAnalytical Chemistry, 1998
- Albumin Blue 580 Fluorescence Assay for AlbuminAnalytical Biochemistry, 1997
- Microfabricated Flow Chamber for Fluorescence-based Chemistries and Stopped-flow Injection CytometryThe Analyst, 1997
- Field-Flow Fractionation: Analysis of Macromolecular, Colloidal, and Particulate MaterialsScience, 1993
- The influence of reynolds number on the entry length and pressure drop for laminar pipe flowThe Canadian Journal of Chemical Engineering, 1993
- Protein diffusion coefficient measurements by laminar flow analysis: Method and applicationsAnalytical Biochemistry, 1984