4.6 Article

Nanopore gates via reversible crosslinking of polymer brushes: a theoretical study

Journal

SOFT MATTER
Volume 17, Issue 10, Pages 2791-2802

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0sm01760d

Keywords

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Funding

  1. Agencia Nacional de Promocion Cientifica y Tecnologica (ANPCyT) [PICT-0154-2016, PICT 4649-2018]
  2. University of Buenos Aires [UBACYT 20020170200215BA]
  3. NSF, Div. of Chem. Bioeng. Env. and Transp. Sys. [1833214]
  4. Div Of Chem, Bioeng, Env, & Transp Sys
  5. Directorate For Engineering [1833214] Funding Source: National Science Foundation

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This study theoretically analyzed the control of transport through nanochannels and pores by soluble crosslinkers and found that increasing the concentration of crosslinkers can modify the conformation of polymer brushes and increase the free-energy barrier for translocation.
Polymer-brush-modified nanopores are synthetic structures inspired by the gated transport exhibited by their biological counterparts. This work theoretically analyzes how the reversible crosslinking of a polymer network by soluble species can be used to control transport through nanochannels and pores. The study was performed with a molecular theory that allows inhomogeneities in the three spatial dimensions and explicitly takes into account the size, shape and conformations of all molecular species, considers the intermolecular interactions between the polymers and the soluble crosslinkers and includes the presence of a translocating particle inside the pore. It is shown than increasing the concentration of the soluble crosslinkers in bulk solution leads to a gradual increase of its number within the pore until a critical bulk concentration is reached. At the critical concentration, the number of crosslinkers inside the pore increases abruptly. For long chains, this sudden transition triggers the collapse of the polymer brush to the center of the nanopore. The resulting structure increases the free-energy barrier that a translocating particle has to surmount to go across the pore and modifies the route of translocation from the axis of the pore to its walls. On the other hand, for short polymer chains the crosslinkers trigger the collapse of the brush to the pore walls, which reduces the translocation barrier.

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