Ullrich Siems
University of Konstanz
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Featured researches published by Ullrich Siems.
Scientific Reports | 2012
Ullrich Siems; Christian Kreuter; Artur Erbe; Nadine Schwierz; Surajit Sengupta; Paul Leiderer; Peter Nielaba
The diffusion behavior of interacting particles determines the behavior of a large number of systems ranging from pedestrians crossing a road to ions passing through channels in living cells. Here we present a system in which the nature of the diffusion process varies with changes in the external conditions. We find this special behavior in a colloidal model system, consisting of micron sized particles which are confined to narrow channels and interact via induced magnetic dipoles. When the density of these particles is changed, diffusion alternates between normal Fickian behavior and single-file diffusion. This anomalous behavior is induced by the order of the particles in the restricted geometry and does not depend on the exact nature of the inter-particle interactions.
Journal of Physics: Condensed Matter | 2012
Christian Kreuter; Ullrich Siems; Peter Henseler; Peter Nielaba; Paul Leiderer; Artur Erbe
Transport phenomena of interacting particles are of high interest for many applications in biology and mesoscopic systems. Here we present measurements on colloidal particles, which are confined in narrow channels on a substrate and interact with a barrier, which impedes the motion along the channel. The substrate of the particle is tilted in order for the particles to be driven towards the barrier and, if the energy gained by the tilt is large enough, surpass the barrier by thermal activation. We therefore study the influence of this barrier as well as the influence of particle interaction on the particle transport through such systems. All experiments are supported with Brownian dynamics simulations in order to complement the experiments with tests of a large range of parameter space which cannot be accessed in experiments.
Journal of Physics: Condensed Matter | 2012
Dorothea Wilms; Sven Deutschländer; Ullrich Siems; Kerstin Franzrahe; Peter Henseler; Peter Keim; Nadine Schwierz; Peter Virnau; K. Binder; Georg Maret; Peter Nielaba
In this work, we focus on low-dimensional colloidal model systems, via simulation studies and also some complementary experiments, in order to elucidate the interplay between phase behavior, geometric structures and transport properties. In particular, we try to investigate the (nonlinear!) response of these very soft colloidal systems to various perturbations: uniform and uniaxial pressure, laser fields, shear due to moving boundaries and randomly quenched disorder. We study ordering phenomena on surfaces or in monolayers by Monte Carlo computer simulations of binary hard-disk mixtures, the influence of a substrate being modeled by an external potential. Weak external fields allow a controlled tuning of the miscibility of the mixture. We discuss the laser induced de-mixing for the three different possible couplings to the external potential. The structural behavior of hard spheres interacting with repulsive screened Coulomb or dipolar interaction in 2D and 3D narrow constrictions is investigated using Brownian dynamics simulations. Due to misfits between multiples of the lattice parameter and the channel widths, a variety of ordered and disordered lattice structures have been observed. The resulting local lattice structures and defect probabilities are studied for various cross sections. The influence of a self-organized order within the system is reflected in the velocity of the particles and their diffusive behavior. Additionally, in an experimental system of dipolar colloidal particles confined by gravity on a solid substrate we investigate the effect of pinning on the dynamics of a two-dimensional colloidal liquid. This work contains sections reviewing previous work by the authors as well as new, unpublished results. Among the latter are detailed studies of the phase boundaries of the de-mixing regime in binary systems in external light fields, configurations for shear induced effects at structured walls, studies on the effect of confinement on the structures and defect densities in three-dimensional systems, the effect of confinement and barriers on two-dimensional flow and diffusion, and the effect of pinning sites on the diffusion.
Journal of Physics: Conference Series | 2018
Ullrich Siems; Peter Nielaba
We review the results of Brownian Dynamics simulations of colloidal particles in external fields confined in channels. Super-paramagnetic Brownian particles are well suited twodimensional model systems for a variety of problems on different length scales, ranging from pedestrian walking through a bottleneck to ions passing ion-channels in living cells. In such systems confinement into channels can have a great influence on the diffusion and transport properties. Especially we will discuss the crossover from single file diffusion in a narrow channel to the diffusion in the extended two-dimensional system. Therefore a new algorithm for computing the mean square displacement (MSD) on logarithmic time scales is presented. In a different study interacting colloidal particles were dragged over a washboard potential and are additionally confined in a two-dimensional micro-channel. In this system kink and anti-kink solitons determine the depinning process of the particles from the periodic potential.
Physical Review E | 2016
Ullrich Siems; Peter Nielaba
This corrects the article DOI: 10.1103/PhysRevE.91.022313.
European Physical Journal-special Topics | 2013
Christian Kreuter; Ullrich Siems; Peter Nielaba; Paul Leiderer; Artur Erbe
Physical Review E | 2015
Ullrich Siems; Peter Nielaba
European Physical Journal-special Topics | 2013
Sven Deutschländer; Kerstin Franzrahe; Birte Heinze; Peter Henseler; Peter Keim; Nadine Schwierz; Ullrich Siems; Peter Virnau; Dorothea Wilms; K. Binder; Georg Maret; Peter Nielaba
Physical Review E | 2015
Birte Heinze; Ullrich Siems; Peter Nielaba
Physical Review E | 2018
Ullrich Siems; Peter Nielaba