3d fem of the eis sensing unit Search Results


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COMSOL Inc 3d fem of the eis sensing unit
<t>ECM</t> of the EIS sensing unit. ( A ) ECM and its fitting curves with EIS data derived <t>from</t> <t>FEM</t> simulation of the pure culture medium over a frequency range from 10 kHz to 10 MHz. The equivalent circuit model, along with the circuit elements to be solved ( C dl and G f in C m and R m ), is depicted on the left side of the fitted curve. In the fitted amplitude and phase curves, the solid lines represent EIS data from the FEM simulation, while the dashed lines illustrate the curves obtained from calculated equivalent circuit elements. ( B ) ECM and its fitting curves with relative amplitude and phase derived from FEM simulation of the polystyrene bead. The ECM with the circuit elements to be determined ( φ in C m and R m ) is depicted on the left. ( C ) ECM and its fitting curves with relative amplitude and phase derived from FEM simulation of the growing mother cell with increasing diameter from 4.0 μm to 6.0 μm at an interval of 0.5 μm. The ECM with the circuit elements to be determined ( φ in C m , R m , C mem , and R c ) is depicted on the left.
3d Fem Of The Eis Sensing Unit, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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ECM of the EIS sensing unit. ( A ) ECM and its fitting curves with EIS data derived from FEM simulation of the pure culture medium over a frequency range from 10 kHz to 10 MHz. The equivalent circuit model, along with the circuit elements to be solved ( C dl and G f in C m and R m ), is depicted on the left side of the fitted curve. In the fitted amplitude and phase curves, the solid lines represent EIS data from the FEM simulation, while the dashed lines illustrate the curves obtained from calculated equivalent circuit elements. ( B ) ECM and its fitting curves with relative amplitude and phase derived from FEM simulation of the polystyrene bead. The ECM with the circuit elements to be determined ( φ in C m and R m ) is depicted on the left. ( C ) ECM and its fitting curves with relative amplitude and phase derived from FEM simulation of the growing mother cell with increasing diameter from 4.0 μm to 6.0 μm at an interval of 0.5 μm. The ECM with the circuit elements to be determined ( φ in C m , R m , C mem , and R c ) is depicted on the left.

Journal: Biosensors

Article Title: Equivalent Circuit Modeling and Analysis for Microfluidic Electrical Impedance Monitoring of Single-Cell Growth

doi: 10.3390/bios15020113

Figure Lengend Snippet: ECM of the EIS sensing unit. ( A ) ECM and its fitting curves with EIS data derived from FEM simulation of the pure culture medium over a frequency range from 10 kHz to 10 MHz. The equivalent circuit model, along with the circuit elements to be solved ( C dl and G f in C m and R m ), is depicted on the left side of the fitted curve. In the fitted amplitude and phase curves, the solid lines represent EIS data from the FEM simulation, while the dashed lines illustrate the curves obtained from calculated equivalent circuit elements. ( B ) ECM and its fitting curves with relative amplitude and phase derived from FEM simulation of the polystyrene bead. The ECM with the circuit elements to be determined ( φ in C m and R m ) is depicted on the left. ( C ) ECM and its fitting curves with relative amplitude and phase derived from FEM simulation of the growing mother cell with increasing diameter from 4.0 μm to 6.0 μm at an interval of 0.5 μm. The ECM with the circuit elements to be determined ( φ in C m , R m , C mem , and R c ) is depicted on the left.

Article Snippet: To determine the initial parameters of the ECM, 3D FEM of the EIS sensing unit was firstly established in COMSOL Multiphysics (COMSOL Inc., Stockholm, Sweden).

Techniques: Derivative Assay