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Indira Barros

Publications and source records attributed to Indira Barros.

2 recordsLinked to original sources

Cooperation, competition and multi-scale reorganisation: reconfigurable assembly of spherical colloids under combined electric and magnetic fields

Field-induced assembly of complex, reconfigurable structures has recently gained significant attention for its potential in programmable self-assembly and micro/nanofabrication. While electric and magnetic fields can independently form diverse colloidal structures, combining them offers enhanced control, design flexibility and reconfigurability. Here we demonstrate multi-scale reorganisation of colloidal superstructures assembled under combined AC electric and DC magnetic fields, where comparable dipolar and electrohydrodynamic interactions create a rich, tunable phase space. Unlike prior studies, which were mostly limited to purely dipolar regimes, our results reveal cooperative, competitive, and multi-scale, multi-stage reorganisation modes depending on field parameters. We explicitly demonstrate reversible switching between a wide range of structural configurations. Imaging and Fourier analysis show how field strength, frequency, direction, and sequence dictate structure formation. We further demonstrate that introducing an additional level of complexity through binary particle systems yields unexpected structures. This versatile, multi-field strategy enables bottom-up fabrication of adaptive, functional microsystems.

cond-mat.soft

Structure, dynamics and phase transitions in electric field assembled colloidal crystals and glasses

Field-induced assembly of colloidal particles into structures of desired configurations is extremely relevant from the viewpoint of producing field-assembled micro-swimmers and reconfigurable smart materials. However, the behaviour of colloidal particles under the influence of alternating current (AC) electric fields remains a topic of ongoing investigation due to the complex effects of various control parameters. Here we examine the role of several factors including particle size, zeta potential, voltage and frequency of the applied field in the formation of different structural configurations ranging from crystals to glasses, and observe interesting and unexpected behaviours in the structure formation. Additionally, we investigate the dynamics of structure formation; the nature of diffusion and active motion in these out-of-equilibrium systems, and show how that leads to the formation of close-packed or open structures. Lastly, we investigate the frequency-driven disorder-order-disorder phase transition in colloidal crystals, which is a starting point for building reconfigurable systems. Our findings contribute to a deeper understanding of the significant roles of various factors in electric field-induced assembly of colloidal particles, as well as pave the way for potential applications in micro-robotics and next-generation materials.

cond-mat.soft