The self-assembly of colloidal particles enables the creation of structured materials with programmable functionalities; however, controlling interaction specificity and aggregate morphology in a reversible and scalable manner remains a major challenge. Here, we investigate the selective depletion-induced self-assembly of 3D-printed flat polygonal colloids, where nanoscale surface topography is engineered through precise modeling in two-photon polymerization. By designing anisotropic lateral surfaces, we direct specific interactions that govern aggregate morphology, yielding dimers, chains, zigzag, and honeycomb structures depending on the surface configuration. The specificity of interaction is tuned by varying the length scale of the topographic surfaces, the depletant concentration and the ionic strength of the solution, revealing a transition from selective to non-selective aggregation regimes. The relative placement of lateral interacting surfaces on the colloids enables assembly into aggregates spanning a broad range of sizes, while tuning the interaction strength selectively stabilizes distinct structural motifs. We demonstrate this interplay between geometric arrangement and interaction energy experimentally and corroborate through both theory and simulations for specifically hexagonal shaped colloids. This study establishes a versatile framework for programming colloidal interactions via micro-architectural design, offering new routes for fabricating reconfigurable and functional soft materials.
Shape-programmable particles offer significant opportunities for microrobotic systems at the individual level and for hierarchical materials with emergent functionalities arising from collective particle behavior. However, fabricating shape-changing stimuli-responsive particles with complex three-dimensional geometries...
Hamed Almohammadi, Gurminder K. Paink, Vasumathi Venkat et al.· 0 citations
Colloidal crystals with the cubic diamond structure are attractive templates for three-dimensional photonic band-gap materials, but their self-assembly is hindered by the need for tetrahedral coordination and staggered next-nearest-neighbor bonds, which together impose substantial kinetic barriers in previously realize...
Min Jae Kim, Xinhang Shen, Min Kyung Lee et al.· Proceedings of the National...· 0 citations
We develop an approach in computer simulations to control reconfigurable hierarchical colloidal assembly on programmable energy landscapes, which are mediated by colloidal interactions in electric fields. An addressable electrode array is implemented to shape nonuniform interfacial electric fields that mediate particle...
Jianli Zhang, Michael A. Bevan· ACS Applied Materials and In...· 0 citations
Pickering emulsions stabilized by anisotropic particles exhibit enhanced stability and tuneable interfacial structures, yet controlling the orientation of adsorbed particles remains challenging. While thermodynamic models predict that rod-shaped anisotropic particles typically favor a parallel orientation at the oil-wa...
Emery Hsu, Yi-Jiang Mu, Kai-Wen Wang et al.· Nanoscale· 0 citations
Tetrahedral geometry is a ubiquitous structural motif in molecular, crystalline, and colloidal materials, where directional interactions and anisotropic particle shape can generate open frameworks, complex superlattices, and hierarchical assemblies. This thesis investigates how tetrahedral interactions and tetrahedral...
Self-assembling nanoparticles is a highly efficient and facile way to form functional nano-, micro- and macrostructures. However, currently available methods lack precision and controllability in size, shape and composition, suffer from poor reproducibility and scalability, and require complex steps and expensive mater...
Yeonhee Lee, Seung-Sang Cha, Yuna Kwak et al.· 0 citations
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