AbstractDielectrophoretic trapping of molecules is typically carried out using metal electrodes to provide high field gradients. In this paper we demonstrate dielectrophoretic trapping using insulating constrictions at far lower frequencies than are feasible with metallic trapping structures because of water electrolysis. We demonstrate that electrodeless dielectrophoresis (EDEP) can be used for concentration and patterning of both single-strand and double-strand DNA. A possible mechanism for DNA polarization in ionic solution is discussed based on the frequency, viscosity, and field dependence of the observed trapping force
A continuum model is developed to predict the dielectrophoretic polarizability of coiled DNA molecul...
We investigate the trapping mechanism of individual DNA molecules in ordered nanoporous structures g...
Dielectrophoresis (DEP) is the induced motion of polarizable particles in non-uniform electric field...
AbstractDielectrophoretic trapping of molecules is typically carried out using metal electrodes to p...
ABSTRACT Dielectrophoretic trapping of molecules is typically carried out using metal electrodes to ...
AbstractThe study of the properties of DNA under high electric fields is of both fundamental and pra...
Regtmeier J, Duong TT, Eichhorn R, Anselmetti D, Ros A. Dielectrophoretic manipulation of DNA: Separ...
The use of the dielectrophoresis as a tool for DNA manipulation is demonstrated experimentally, usin...
AbstractDNA molecules can be manipulated in aqueous solution in a manner analogous to optical trappi...
This paper reports measurements that characterize the collection of DNA onto interdigitated microele...
AbstractLight-induced dielectrophoretic movement of polystyrene beads and λ-DNA is studied using thi...
Regtmeier J, Eichhorn R, Bogunovic L, Ros A, Anselmetti D. Dielectrophoretic Trapping and Polarizabi...
Dielectrophoresis (DEP) is the induced motion of polarizable particles in non-uniform electric field...
Dielectrophoresis (DEP) is the induced motion of polarizable particles in non-uniform electric field...
A continuum model is developed to predict the dielectrophoretic polarizability of coiled DNA molecul...
A continuum model is developed to predict the dielectrophoretic polarizability of coiled DNA molecul...
We investigate the trapping mechanism of individual DNA molecules in ordered nanoporous structures g...
Dielectrophoresis (DEP) is the induced motion of polarizable particles in non-uniform electric field...
AbstractDielectrophoretic trapping of molecules is typically carried out using metal electrodes to p...
ABSTRACT Dielectrophoretic trapping of molecules is typically carried out using metal electrodes to ...
AbstractThe study of the properties of DNA under high electric fields is of both fundamental and pra...
Regtmeier J, Duong TT, Eichhorn R, Anselmetti D, Ros A. Dielectrophoretic manipulation of DNA: Separ...
The use of the dielectrophoresis as a tool for DNA manipulation is demonstrated experimentally, usin...
AbstractDNA molecules can be manipulated in aqueous solution in a manner analogous to optical trappi...
This paper reports measurements that characterize the collection of DNA onto interdigitated microele...
AbstractLight-induced dielectrophoretic movement of polystyrene beads and λ-DNA is studied using thi...
Regtmeier J, Eichhorn R, Bogunovic L, Ros A, Anselmetti D. Dielectrophoretic Trapping and Polarizabi...
Dielectrophoresis (DEP) is the induced motion of polarizable particles in non-uniform electric field...
Dielectrophoresis (DEP) is the induced motion of polarizable particles in non-uniform electric field...
A continuum model is developed to predict the dielectrophoretic polarizability of coiled DNA molecul...
A continuum model is developed to predict the dielectrophoretic polarizability of coiled DNA molecul...
We investigate the trapping mechanism of individual DNA molecules in ordered nanoporous structures g...
Dielectrophoresis (DEP) is the induced motion of polarizable particles in non-uniform electric field...