Self-assembled monolayers of charged polymers are an integral component of many state-of-the-art nanobiosensors. Electrical interactions between charged surfaces and charged biomolecules, adopting the roles of linkers or capture molecules, are not only crucial to the sensor performance but may also be exploited for novel sensing concepts based on electrically actuated interfaces. Here we introduce an analytical model describing the behavior of double-stranded DNA and proteins tethered to externally biased microelectrodes. Continuum electrostatic Poisson–Boltzmann models and the drift-diffusion (Smoluchowski) equation are used to calculate the steady state as well as the dynamic behavior of oligonucleotide rods in DC and AC electric fields. ...
Monitoring complex interactions of biological systems at the molecular level provides new opportunit...
Nanopores offer sensors for a broad range of nanoscale materials, in particular ones of biological o...
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...
AbstractWe report on the electrical manipulation of single- and double-stranded oligodeoxynucleotide...
Despite the variety of nucleic acid sensors developed, we still do not have definite answers to some...
AbstractWe have previously demonstrated that a nanometer-diameter pore in a nanometer-thick metal-ox...
Many interfacial chemical phenomena are governed in part by electrostatic interactions between polye...
Electron transfer (ET) in redox-labeled double-stranded (ds) DNA tethered to electrodes through the ...
Protein nanopores show great potential as low-cost detectors in DNA sequencing devices. To date, res...
ABSTRACT: Electrochemical DNA-based (E-DNA) sensors are utilized to detect a variety of targets incl...
After much initial controversy over the past 20 years, the mechanism of charge-transfer in DNA is no...
Thesis (Ph.D.)--University of Washington, 2022Understanding and controlling the electrical conductiv...
Charge transport at the molecular scale builds the cornerstone of molecular electronics (ME), a nove...
Electrochemical DNA-based (E-DNA) sensors are utilized to detect a variety of targets including comp...
Electronic devices are becoming increasingly used in chemical- and bio-sensing applications and ther...
Monitoring complex interactions of biological systems at the molecular level provides new opportunit...
Nanopores offer sensors for a broad range of nanoscale materials, in particular ones of biological o...
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...
AbstractWe report on the electrical manipulation of single- and double-stranded oligodeoxynucleotide...
Despite the variety of nucleic acid sensors developed, we still do not have definite answers to some...
AbstractWe have previously demonstrated that a nanometer-diameter pore in a nanometer-thick metal-ox...
Many interfacial chemical phenomena are governed in part by electrostatic interactions between polye...
Electron transfer (ET) in redox-labeled double-stranded (ds) DNA tethered to electrodes through the ...
Protein nanopores show great potential as low-cost detectors in DNA sequencing devices. To date, res...
ABSTRACT: Electrochemical DNA-based (E-DNA) sensors are utilized to detect a variety of targets incl...
After much initial controversy over the past 20 years, the mechanism of charge-transfer in DNA is no...
Thesis (Ph.D.)--University of Washington, 2022Understanding and controlling the electrical conductiv...
Charge transport at the molecular scale builds the cornerstone of molecular electronics (ME), a nove...
Electrochemical DNA-based (E-DNA) sensors are utilized to detect a variety of targets including comp...
Electronic devices are becoming increasingly used in chemical- and bio-sensing applications and ther...
Monitoring complex interactions of biological systems at the molecular level provides new opportunit...
Nanopores offer sensors for a broad range of nanoscale materials, in particular ones of biological o...
AbstractSequencing DNA in a synthetic solid-state nanopore is potentially a low-cost and high-throug...