This dissertation presents studies on self-assembly of nanoparticles adsorbed onto fluid and elastic membranes. It focuses on particles that are at least one order of magnitude larger than the surface thickness, in which case all chemical details of the surface can be ignored in favor of a coarse-grained representation, and the collective behavior of many particles can be analyzed. We use Monte Carlo and molecular dynamics simulations to study the phase behavior of these systems, and its dependence on the mechanical and geometrical properties of the surface, the strength of the particle-surface interaction and the size and the concentration of the nanoparticles. We present scaling laws and accurate free-enegy calculations to understand the ...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
Soft surfaces experience morphological changes upon interaction with objects at various length scale...
In this thesis we explore two specific topics within the broad field of particle adhesion. First, we...
In this thesis we explore two specific topics within the broad field of particle adhesion. First, we...
Using systematic numerical simulations, we study the self-assembly of elongated curved nanoparticles...
Using systematic numerical simulations, we study the self-assembly of elongated curved nanoparticles...
Using systematic numerical simulations, we study the self-assembly of elongated curved nanoparticles...
Advances in nanotechnology lead to an increasing interest in how nanoparticles interact with biomemb...
Nanoparticles are ever more present in our bodies, both as devices engineered for biomedical applica...
Biological membranes and lipid vesicles often display complex shapes with non-uniform membrane curva...
The self-assembly of spherical nanoparticles, resulting from their adhesion on tensionless lipid mem...
The self-assembly of spherical nanoparticles, resulting from their adhesion on tensionless lipid mem...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
Soft surfaces experience morphological changes upon interaction with objects at various length scale...
In this thesis we explore two specific topics within the broad field of particle adhesion. First, we...
In this thesis we explore two specific topics within the broad field of particle adhesion. First, we...
Using systematic numerical simulations, we study the self-assembly of elongated curved nanoparticles...
Using systematic numerical simulations, we study the self-assembly of elongated curved nanoparticles...
Using systematic numerical simulations, we study the self-assembly of elongated curved nanoparticles...
Advances in nanotechnology lead to an increasing interest in how nanoparticles interact with biomemb...
Nanoparticles are ever more present in our bodies, both as devices engineered for biomedical applica...
Biological membranes and lipid vesicles often display complex shapes with non-uniform membrane curva...
The self-assembly of spherical nanoparticles, resulting from their adhesion on tensionless lipid mem...
The self-assembly of spherical nanoparticles, resulting from their adhesion on tensionless lipid mem...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
The aggregation of nanoparticles affects their reactivity, transport across biological membranes, up...
Soft surfaces experience morphological changes upon interaction with objects at various length scale...