Controlling the shape of small clusters with and without macroscopic fields
arXiv:2205.08848 · doi:10.1103/PhysRevLett.128.256102
Abstract
Despite major advances in the understanding of the formation and dynamics of nano-clusters in the past decades, theoretical bases for the control of their shape are still lacking. We investigate strategies for driving fluctuating few-particle clusters to an arbitrary target shape in minimum time with or without an external field. This question is recast into a first passage problem, solved numerically, and discussed within a high temperature expansion. Without field, large-enough low-energy target shapes exhibit an optimal temperature at which they are reached in minimum time. We then compute the optimal way to set an external field to minimize the time to reach the target, leading to a gain of time that grows when increasing cluster size or decreasing temperature. This gain can shift the optimal temperature or even create one. Our results could apply to clusters of atoms at equilibrium, and colloidal or nanoparticle clusters under thermo- or electrophoresis.
Accepted for publication in Phys. Rev. Lett
References in corpus (6)
- An atom-by-atom assembler of defect-free arbitrary 2d atomic arrays
- Direct measurement of thermophoretic forces
- Ring structures and mean first passage time in networks
- Mean first-passage time for random walks in general graphs with a deep trap
- Infinite family of persistence exponents for interface fluctuations
- Random Walks on Complex Networks