Metamachines of Pluripotent Colloids
arXiv:2111.08688 · doi:10.1038/s41467-021-26699-6
Abstract
Machines enabled the Industrial Revolution and are central to modern technological progress: A machine's parts transmit forces, motion, and energy to one another in a predetermined manner. Today's engineering frontier, building artificial micromachines that emulate the biological machinery of living organisms, requires faithful assembly and energy consumption at the microscale. Here, we demonstrate the programmable assembly of active particles into autonomous metamachines using optical templates. Metamachines, or machines made of machines, are stable, mobile and autonomous architectures, whose dynamics stem from the geometry. We use the interplay between anisotropic force generation of the active colloids with the control of their orientation by local geometry. This allows autonomous reprogramming of active particles of the metamachines to achieve multiple functions. It permits the modular assembly of metamachines by fusion, reconfiguration of metamachines and, we anticipate, a shift in focus of self-assembly towards active matter and reprogrammable materials.
4 figures
References in corpus (5)
- Self-motile colloidal particles: from directed propulsion to random walk
- Topology and Dynamics of Active Nematic Vesicles
- Hydrodynamics of self-propulsion near a boundary: predictions and accuracy of far-field approximations
- Tutorial on the analytical calculation of optical forces on spherical particles in optical tweezers
- Diffusiophoretic design of self-spinning microgears from colloidal microswimmers
Cited by in corpus (14)
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- Chemical herding as a multiplicative factor for top-down manipulation of colloids
- Programmable Persistent Random Walks in Active Brownian Particles Govern Emergent Dynamics
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