Screening-Limited Response of NanoBiosensors
- 3 April 2008
- journal article
- research article
- Published by American Chemical Society (ACS) in Nano Letters
- Vol. 8 (5) , 1281-1285
- https://doi.org/10.1021/nl072593i
Abstract
Despite tremendous potential of highly sensitive electronic detection of biomolecules by nanoscale biosensors for genomics and proteomic applications, many aspects of experimentally observed sensor response (S) are difficult to understand within isolated theoretical frameworks of kinetic response or electrolyte screening. In this paper, we combine analytic solutions of Poisson-Boltzmann and diffusion-capture equations to show that the electrostatic screening within an ionic environment limits the response of nanobiosensor such that S(t) approximately c1(ln(rho0) - ln(I0)/2 + ln(t)/ D F + c2[pH]) + c3 where c i are geometry-dependent constants, rho0 is the concentration of target molecules, I0 the salt concentration, and D F the fractal dimension of sensor surface. Our analysis provides a coherent theoretical interpretation of a wide variety of puzzling experimental data that have so far defied intuitive explanation.Keywords
All Related Versions
This publication has 16 references indexed in Scilit:
- Dimensionally Frustrated Diffusion towards Fractal AdsorbersPhysical Review Letters, 2007
- Label-free immunodetection with CMOS-compatible semiconducting nanowiresNature, 2007
- Quantitative Real-Time Measurements of DNA Hybridization with Alkylated Nonoxidized Silicon Nanowires in Electrolyte SolutionJournal of the American Chemical Society, 2006
- Field Effect of Screened Charges: Electrical Detection of Peptides and Proteins by a Thin‐Film ResistorChemphyschem, 2006
- Multiplexed electrical detection of cancer markers with nanowire sensor arraysNature Biotechnology, 2005
- Direct Ultrasensitive Electrical Detection of DNA and DNA Sequence Variations Using Nanowire NanosensorsNano Letters, 2003
- Nanowire Nanosensors for Highly Sensitive and Selective Detection of Biological and Chemical SpeciesScience, 2001
- The remarkable similarity between the acid-base properties of ISFETs and proteins and the consequences for the design of ISFET biosensorsBiosensors and Bioelectronics, 1995
- A critical evaluation of direct electrical protein detection methodsBiosensors and Bioelectronics, 1991
- Approximate analytic solution of the Poisson–Boltzmann equation for a spherical colloidal particleJournal of the Chemical Society, Faraday Transactions 2: Molecular and Chemical Physics, 1977