Particle dispersions provide a promising tool for the engineering of functional materials that exploit self-assembly of complex structures. Dispersion made from magnetic colloidal particles is a great choice; they are biocompatible and remotely controllable among many other advantages. However, their dominating dipolar interaction typically limits structural complexity to linear arrangements. This paper shows how a magnetostatic equilibrium state with noncollinear arrangement of the magnetic moments, as reported for ferromagnetic Janus particles, enables the controlled self-organization of diverse structures in two dimensions via constant and low-frequency external magnetic fields. Branched clusters of staggered chains, compact clusters, li...
<p>Pattern formation is a mysterious phenomenon occurring at all scales in nature. The beauty of the...
Dipolar particles are fundamental building blocks in nature and technology, yet the effect of partic...
For magnetite spherical nanoparticles, the orientation of the dipole moment in the crystal does not ...
Particle dispersions provide a promising tool for the engineering of functional materials that explo...
Systems of interacting colloidal particles are ideal tools for studies of pattern formation and coll...
Systems of interacting colloidal particles are ideal tools for studies of pattern formation and coll...
The anisotropy of dipolar interactions can sometimes be a hindrance when assembling colloids, as it ...
The purpose of this work is to develop techniques for building complex colloidal assemblies using an...
By engineering thin magnetic films onto homogeneous colloidal particles, various crystalline lattice...
Self-assembly of nanoparticles is one of the most promising methods for the preparation of novel mat...
peer reviewedNeodymium spherical magnets are inexpensive objects that demonstrate how dipolar partic...
The interesting magnetic response of conventional ferro-colloid has proved extremely useful in a wid...
Using colloidal particles as models to understand processes on a smaller scale is a precious approac...
The interesting magnetic response of conventional ferro-colloid has proved extremely useful in a wid...
Colloids are micron-sized particles widely used in industrial processes and everyday products. Conve...
<p>Pattern formation is a mysterious phenomenon occurring at all scales in nature. The beauty of the...
Dipolar particles are fundamental building blocks in nature and technology, yet the effect of partic...
For magnetite spherical nanoparticles, the orientation of the dipole moment in the crystal does not ...
Particle dispersions provide a promising tool for the engineering of functional materials that explo...
Systems of interacting colloidal particles are ideal tools for studies of pattern formation and coll...
Systems of interacting colloidal particles are ideal tools for studies of pattern formation and coll...
The anisotropy of dipolar interactions can sometimes be a hindrance when assembling colloids, as it ...
The purpose of this work is to develop techniques for building complex colloidal assemblies using an...
By engineering thin magnetic films onto homogeneous colloidal particles, various crystalline lattice...
Self-assembly of nanoparticles is one of the most promising methods for the preparation of novel mat...
peer reviewedNeodymium spherical magnets are inexpensive objects that demonstrate how dipolar partic...
The interesting magnetic response of conventional ferro-colloid has proved extremely useful in a wid...
Using colloidal particles as models to understand processes on a smaller scale is a precious approac...
The interesting magnetic response of conventional ferro-colloid has proved extremely useful in a wid...
Colloids are micron-sized particles widely used in industrial processes and everyday products. Conve...
<p>Pattern formation is a mysterious phenomenon occurring at all scales in nature. The beauty of the...
Dipolar particles are fundamental building blocks in nature and technology, yet the effect of partic...
For magnetite spherical nanoparticles, the orientation of the dipole moment in the crystal does not ...