Deterministic Lateral Displacement (DLD) is a label-free particle sorting method that separates by size continuously and with high resolution. By combining DLD with electric fields (eDLD), we show separation of a variety of nano and micro-sized particles primarily by their zeta potential. Zeta potential is an indicator of electrokinetic charge—the charge corresponding to the electric field at the shear plane—an important property of micro-and nanoparticles in colloidal or separation science. We also demonstrate proof of principle of separation of nanoscale liposomes of different lipid compositions, with strong relevance for biomedicine. We perform careful characterization of relevant experimental conditions necessary to obtain adequate sort...
Dielectrophoresis (DEP) is a phenomenon of induced particle motion in non-uniform electric fields. T...
We show for the first time that it is possible to separate a population of nanoparticles into two su...
Lab-on-chip devices are an emerging microsystem technology in which laboratory functions are miniatu...
Deterministic Lateral Displacement (DLD) is a label-free particle sorting method that separates by s...
Microfluidics will lead to a revolution in the field of sample analysis and to the development of La...
This paper describes the behaviour of particles in a Deterministic Lateral Displacement (DLD) separa...
We describe a novel particle separation technique that combines deterministic lateral displacement (...
We report the use of dielectrophoresis (DEP) to achieve tunability, improve dynamic range and open u...
The precise separation of nanoscale particles has proven challenging due to diffusion and the need t...
We show that by combining deterministic lateral displacement (DLD) with electrokinetics, it is possi...
We show that by combining deterministic lateral displacement (DLD) with electrokinetics, it is possi...
Deterministic Lateral Displacement (DLD) is a microfluidic technique where arrays of micropillars wi...
Nanoparticle separation techniques are of significant importance in nanoscience and nanotechnologica...
Electrokinetically-driven deterministic lateral displacement (e-DLD) is a recently proposed techniqu...
We describe fractionation of sub-micron vesicles and particles suspended in high conductivity electr...
Dielectrophoresis (DEP) is a phenomenon of induced particle motion in non-uniform electric fields. T...
We show for the first time that it is possible to separate a population of nanoparticles into two su...
Lab-on-chip devices are an emerging microsystem technology in which laboratory functions are miniatu...
Deterministic Lateral Displacement (DLD) is a label-free particle sorting method that separates by s...
Microfluidics will lead to a revolution in the field of sample analysis and to the development of La...
This paper describes the behaviour of particles in a Deterministic Lateral Displacement (DLD) separa...
We describe a novel particle separation technique that combines deterministic lateral displacement (...
We report the use of dielectrophoresis (DEP) to achieve tunability, improve dynamic range and open u...
The precise separation of nanoscale particles has proven challenging due to diffusion and the need t...
We show that by combining deterministic lateral displacement (DLD) with electrokinetics, it is possi...
We show that by combining deterministic lateral displacement (DLD) with electrokinetics, it is possi...
Deterministic Lateral Displacement (DLD) is a microfluidic technique where arrays of micropillars wi...
Nanoparticle separation techniques are of significant importance in nanoscience and nanotechnologica...
Electrokinetically-driven deterministic lateral displacement (e-DLD) is a recently proposed techniqu...
We describe fractionation of sub-micron vesicles and particles suspended in high conductivity electr...
Dielectrophoresis (DEP) is a phenomenon of induced particle motion in non-uniform electric fields. T...
We show for the first time that it is possible to separate a population of nanoparticles into two su...
Lab-on-chip devices are an emerging microsystem technology in which laboratory functions are miniatu...