The main goal of the Consolidator grant "Enforce" is to power a series of experimental research lines based on the combined use of magnetic and optical forces to explore geometric frustration phenomena in soft colloidal systems. Geometric frustration refers to the inability of a system to satisfy competing interactions between its elements in presence of spatial constraints and it is widespread in condensed matter physics. Understanding the fundamental mechanisms of geometric frustration and how it emerges will contribute significantly to advancing fundamental science and will also unveil emerging phenomena in interacting many-body systems. Moreover, from the technological side, frustrated systems display topological defects and controlling their dynamics could provide guidelines for engineering similar states in nanoscale magnetic spin ice. Such systems could potentially enable a new class of dissipation free memories and devices, with vast technological applications.
While geometric frustration phenomena have been traditionally investigated with artificial spin ice systems, namely lattice of lithographically designed nano scale islands, in this project we propose to investigate an alternative, microscopic version of it named the colloidal ice. Such system is based on interacting colloidal particles placed within a lattice of topographic double wells, allowing to directly visualize the particle dynamics and to tune in real time their pair interactions. The features of the colloidal ice allow to address several fundamental questions in frustrated systems from a completely different perspective and thus with a radically innovative approach.
The project is divided in three Workpackages (WPs) each with specific Objectives (OBJs). In WP1, OBJ1 aims at restoring the residual entropy in the two-dimensional square ice, a current challenge in nanoscale spin ice systems. The goal of OBJ2 is to miniaturize the colloidal ice to the nanoscale in order to explore the effect of strong thermal fluctuations on the particle dynamics. In WP2, OBJ1 focused on complex lattices characterized by mixed coordination and their low energy states, while in OBJ2 the group will investigate annealing effects of these lattice via precessing magnetic field. Finally, WP3 aims at realizing a three-dimensional version of a coloidal ice.