Collective dynamics and self-assembly of calcium-alginate motors of varying sizes
Коллективная динамика и самоорганизация кальциево-альгинатных моторов различного размера
2026-07-10
SCID: 54.1/vwhwxu3g
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Betti numbers topologyMarangoni and capillary interactionscalcium-alginate motorsoscillatory collisions and synchronizationsize-dependent collective dynamics
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Abstract (AI)
Self-propelling calcium-alginate motors exhibit complex interactions driven by attractive capillary and repulsive Marangoni forces, yet how motor size influences their collective dynamics remains unclear. Here we experimentally investigate the size-dependent oscillatory collisions, synchronization, and self-assembly of calcium-alginate motors ranging from two to fifteen units. Using high-speed imaging and a particle-based model incorporating pairwise interactions, we reveal that smaller motors sustain longer oscillations, while larger motors coordinate the motion of smaller ones, leading to vibrational-like dynamics. Assemblies of eight or more motors form clusters characterized topologically by Betti numbers, reflecting evolving connectivity and voids. Our findings elucidate how size-dependent forces govern the emergent spatiotemporal patterns and self-organization of active polymer motors, providing insights for designing intelligent collective systems with potential applications in micro-actuation and soft robotics.
Key Findings
1
A particle-based model with pairwise interactions reproduces observed size-dependent oscillations, synchronization, and self-assembly.
2
Assemblies of eight or more motors form clusters whose topology (connectivity and voids) can be characterized by Betti numbers.
3
Calcium-alginate motors interact via attractive capillary and repulsive Marangoni forces that drive complex collective dynamics.
4
Larger motors coordinate motion of smaller ones, producing vibrational-like collective dynamics.
5
Smaller motors sustain longer oscillatory collisions than larger motors.
Research Object
Self-propelling calcium-alginate motors of varying sizes (two to fifteen units)
Research Subject
Size-dependent collective dynamics: oscillatory collisions, synchronization, self-assembly, and emergent spatiotemporal patterns driven by capillary and Marangoni interactions
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2026-07-10
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