English

Hopping and crawling DNA-coated colloids

Soft Condensed Matter 2023-10-31 v1

Abstract

Understanding the motion of particles with ligand-receptors is important for biomedical applications and material design. Yet, even among a single design, the prototypical DNA-coated colloids, seemingly similar micrometric particles hop or roll, depending on the study. We shed light on this problem by observing DNA-coated colloids diffusing near surfaces coated with complementary strands for a wide array of coating designs. We find colloids rapidly switch between 2 modes: they hop - with long and fast steps - and crawl - with short and slow steps. Both modes occur at all temperatures around the melting point and over a wide array of designs. The particles become increasingly subdiffusive as temperature decreases, in line with subsequent velocity steps becoming increasingly anti-correlated. Overall, crawling (or hopping) phases are more predominant at low (or high) temperatures; crawling is also more efficient at low temperatures than hopping to cover large distances. We rationalize this behavior within a simple model: at lower temperatures, the number of bound strands increases, and detachment of all bonds is unlikely, hence, hopping is prevented and crawling favored. We thus reveal the mechanism behind a common design rule relying on increased strand density for long-range self-assembly: dense strands on surfaces are required to enable crawling, possibly facilitating particle rearrangements.

Keywords

Cite

@article{arxiv.2310.18785,
  title  = {Hopping and crawling DNA-coated colloids},
  author = {Jeana Aojie Zheng and Miranda Holmes-Cerfon and David J. Pine and Sophie Marbach},
  journal= {arXiv preprint arXiv:2310.18785},
  year   = {2023}
}
R2 v1 2026-06-28T13:04:45.727Z