Design Strategies for Self-Assembly of Discrete Targets
arXiv:1508.02627 · doi:10.1063/1.4927671
Abstract
Both biological and artificial self-assembly processes can take place by a range of different schemes, from the successive addition of identical building blocks, to hierarchical sequences of intermediates, all the way to the fully addressable limit in which each component is unique. In this paper we introduce an idealized model of cubic particles with patterned faces that allows self-assembly strategies to be compared and tested. We consider a simple octameric target, starting with the minimal requirements for successful self-assembly and comparing the benefits and limitations of more sophisticated hierarchical and addressable schemes. Simulations are performed using a hybrid dynamical Monte Carlo protocol that allows self-assembling clusters to rearrange internally while still providing Stokes-Einstein-like diffusion of aggregates of different sizes. Our simulations explicitly capture the thermodynamic, dynamic and steric challenges typically faced by self-assembly processes, including competition between multiple partially-completed structures. Self-assembly pathways are extracted from the simulation trajectories by a fully extendable scheme for identifying structural fragments, which are then assembled into history diagrams for successfully completed target structures. For the simple target, a one-component assembly scheme is most efficient and robust overall, but hierarchical and addressable strategies can have an advantage under some conditions if high yield is a priority.
15 pages, 15 figures
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Cited by in corpus (6)
- Temperature Protocols to Guide Selective Self-Assembly of Competing Structures
- Direct observation and rational design of nucleation behavior in addressable self-assembly
- DNA brick self-assembly with an off-lattice potential
- Hierarchical assembly may be a way to make large information-rich structures
- Effects of co-ordination number on the nucleation behaviour in many-component self-assembly
- Controlling Fragment Competition on Pathways to Addressable Self-Assembly