DocumentCode
1059484
Title
Calculation of the Response of Field-Effect Transistors to Charged Biological Molecules
Author
Landheer, Dolf ; McKinnon, W. Ross ; Aers, Geof ; Jiang, Weihong ; Deen, M. Jamal ; Shinwari, M. Waleed
Author_Institution
Nat. Res. Council of Canada, Ottawa
Volume
7
Issue
9
fYear
2007
Firstpage
1233
Lastpage
1242
Abstract
Robust approximations are presented that allow for the simple calculation of the total charge and potential drop psi0 across the region of electrolyte containing charged biological macromolecules that are attached to the gate area of a field-effect transistor (FET). The attached macromolecules are modeled as an ion-permeable membrane in contact with the insulator surface, exchanging protons with the electrolyte as described by the site-binding model. The approximations are based on a new screening length involving the Donnan potential in the membrane and are validated by comparison to the results obtained by numerical solution of the one-dimensional Poisson-Boltzmann equation in the electrolyte and membrane. For gates covered with amphoteric materials such as SiO2, the high surface charge density sigma0 due to proton exchange at values of pH far from the point-of-zero charge is a nonlinear function of psi0, but psi0 and sigma0 are still linear functions of the semiconductor surface potential between the source and drain. Nonlinear expressions for the amphoteric site charge at the contacts can thus be applied effectively with the new approximations to calculate the current-voltage characteristics of the FETs using the strong inversion and charge-sheet models.
Keywords
bioelectric potentials; biomembranes; biomolecular electronics; electrolytes; field effect transistors; macromolecules; molecular biophysics; surface potential; FET; amphoteric materials; amphoteric site charge; biological system modeling; biomedical transducers; biomembranes; charge-sheet models; charged biological macromolecules; current-voltage characteristics; electrolyte potential drop; field-effect transistors response; insulator surface; inversion model; ion-permeable membrane; linear functions; macromolecules model; membrane Donnan potential; nonlinear expressions; nonlinear function; one-dimensional Poisson-Boltzmann equation; protons exchange; semiconductor surface potential; site-binding model; surface charge density; Biological system modeling; Biomembranes; Biosensors; FETs; Insulation; Molecular biophysics; Optical signal processing; Poisson equations; Protons; Semiconductor materials; Algorithms; biological system modeling; biomedical transducers; biomembranes; field-effect transistors (FETs); modeling;
fLanguage
English
Journal_Title
Sensors Journal, IEEE
Publisher
ieee
ISSN
1530-437X
Type
jour
DOI
10.1109/JSEN.2007.901047
Filename
4276691
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