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1.
Sens Actuators B Chem ; 224: 275-281, 2016 Mar 01.
Article in English | MEDLINE | ID: mdl-27647950

ABSTRACT

In this manuscript, we present three different micro-impedance sensing architectures for electronic counting of cells and beads. The first method of sensing is based on using an open circuit sensing electrode integrated in a micro-pore, which measures the shift in potential as a micron-sized particle passes through. Our micro-pore, based on a funnel shaped microchannel, was fabricated in PDMS and was bound covalently to a glass substrate patterned with a gold open circuit electrode. The amplification circuitry was integrated onto a battery-powered custom printed circuit board. The second method is based on a three electrode differential measurement, which opens up the potential of using signal processing techniques to increase signal to noise ratio post measurement. The third architecture uses a contactless sensing approach, which significantly minimizes the cost of the consumable component of the impedance cytometer. We demonstrated proof of concept for the three sensing architectures by measuring the detected signal due to the passage of micron sized beads through the pore.

2.
ACS Nano ; 6(8): 6767-75, 2012 Aug 28.
Article in English | MEDLINE | ID: mdl-22762282

ABSTRACT

We report the use of an array of electrically gated ~200 nm solid-state pores as nanofluidic transistors to manipulate the capture and passage of DNA. The devices are capable of reversibly altering the rate of DNA capture by over 3 orders of magnitude using sub-1 V biasing of a gate electrode. This efficient gating originates from the counter-balance of electrophoresis and electroosmosis, as revealed by quantitative numerical simulations. Such a reversible electronically tunable biomolecular switch may be used to manipulate nucleic acid delivery in a fluidic circuit, and its development is an important first step toward active control of DNA motion through solid-state nanopores for sensing applications.


Subject(s)
Biosensing Techniques/instrumentation , DNA/isolation & purification , Microfluidic Analytical Techniques/instrumentation , Micromanipulation/instrumentation , Nanotechnology/instrumentation , Transistors, Electronic , DNA/chemistry , DNA/radiation effects , Equipment Design , Equipment Failure Analysis
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