Dynamics of polymer translocation into a circular nanocontainer through a nanopore
arXiv:1212.1044 · doi:10.1063/1.4712618
Abstract
Using Langevin dynamics simulations, we investigate the dynamics of polymer translocation into a circular nanocontainer through a nanopore under a driving force . We observe that the translocation probability initially increases and then saturates with increasing , independent of , which is the average density of the whole chain in the nanocontainer. The translocation time distribution undergoes a transition from a Gaussian distribution to an asymmetric distribution with increasing . Moreover, we find a nonuniversal scaling exponent of the translocation time as chain length, depending on and . These results are interpreted by the conformation of the translocated chain in the nanocontainer and the time of an individual segment passing through the pore during translocation.
9 pages, 12 figures
References in corpus (18)
- Nonequilibrium dynamics of polymer translocation and straightening
- Influence of polymer-pore interactions on translocation
- Sequence dependence of DNA translocation through a nanopore
- Langevin Dynamics Simulations of Polymer Translocation through Nanopores
- Polymer packaging and ejection in viral capsids: shape matters
- Driven polymer translocation through a nanopore: a manifestation of anomalous diffusion
- Confinement-driven translocation of a flexible polymer
- Dynamical Scaling Exponents for Polymer Translocation through a Nanopore
- Comment on ``Passage Times for Unbiased Polymer Translocation through a Narrow Pore''
- Pore-blockade Times for Field-Driven Polymer Translocation
- Polymer Translocation in Crowded Environments
- Polymer translocation through a nanopore under a pulling force
- Dynamics of forced biopolymer translocation
- Heteropolymer translocation through nanopores
- Polymer translocation into a fluidic channel through a nanopore
- Critical evaluation of the computational methods used in the forced polymer translocation
- Polymer translocation out of confined environments
- Polymer translocation into laterally unbounded confined environments