ISI Papers With Our Products
Title: Moving Boundary Model to Estimate Diffusion Coefficient and Viscosity of Dextran Coated Magnetic Iron-Oxide Using Capillary Electrophoresis
Journal: Acta Scientific MEDICAL SCIENCES
Author: 1. Tajudeen Adebileje, 2. Rahimeh Rasouli, Amir Amani, Reza
Faridi-Majidi
Year: 2021
Address: 1. Department of Medical Nanotechnology, School of Advanced Technologies in Medicine, Tehran University of Medical Sciences-International Campus, Tehran, Iran
2. Department of Medical Nanotechnology, School of Advanced Technologies in Medicine, Tehran University of Medical Sciences, Tehran, Iran
Abstract: Capillary electrophoresis serves as a suitable analytical method to characterize the properties of samples through the application
of pressure and voltage within a capillary tube. We present a categorized interface boundary problem of liquids to estimate the diffusion
coefficient (DC) and viscosity of dextran- coated magnetic iron oxide (Dextran-MIOS) confined in formic acid solution (FAS).
We considered an interface, with a dimension greater than zero, between samples filled into the capillary tube followed by either
FAS or water flow at constant pressure (104 pa). We fitted the time point corresponding to interface minimum frequency, maximum
frequency, Inflection frequency, and also the apparent volume of liquid between the frequencies into viscosity and moving boundary
diffusion models. We used the factorial design of experiments for the design/evaluation of sample constituents by considering the
concentration of FA (CFA) and volume fraction of Dextran-MIOS (VFDextran-MIOS) on DC and viscosity. We observed a symmetry behavior
of CFA and VFDextran-MIOS in samples on the DC of Dextran-MIOS during FAS flow, while there is a loss in symmetry during water flow.
We observed a symmetry behavior of only VFDextran-MIOS in samples on the viscosity of Dextran-MIOS during FAS flow, while there is a
change in symmetry during water flow.
Keywords: Dextran Coated Magnetic Iron-oxide; Diffusion Coefficient; Viscosity; Formic Acid Solution; and Fractional Factorial Design
Application: Modeling
Product Model 1: Capillary Electrophoresis (CE1000)
Product Model 2:
URL: #https://www.researchgate.net/profile/Rahimeh-Rasouli/publication/354035721_Moving_Boundary_Model_to_Estimate_Diffusion_Coefficient_and_Viscosity_of_Dextran_Coated_Magnetic_Iron-Oxide_Using_Capillary_Electrophoresis/links/61203b53232f9558659d944c/Moving-Boundary-Model-to-Estimate-Diffusion-Coefficient-and-Viscosity-of-Dextran-Coated-Magnetic-Iron-Oxide-Using-Capillary-Electrophoresis.pdf#