Issue 22, 2011

Vapor-based synthesis of ultrathin hydrogel coatings for thermo-responsive nanovalves

Abstract

We report vapor-based, single-step synthesis of hydrogel coatings and the fabrication of thermo-responsive nanovalves with fine flow regulation. The hydrogel films exhibited swelling ratios as high as 15.4 at room temperature. The swelling ratio dramatically decreased with the increase of the temperature. The increase of the crosslinking degree in the hydrogel reduced the swelling ratio of the coatings and broadened the transition temperature region. Thermo-responsive nanovalves were fabricated by depositing ultrathin hydrogel coatings inside nanoporous track-etched polycarbonate membranes. Electron microscopy observations revealed hydrogel coatings along the sidewalls of the nanopores with controllable thicknesses in the sub-50 nm range. The “closed” and “open” states of the nanopores for the flow of bovine serum albumin were achieved by varying the temperature. Fine regulation of the protein flow was also demonstrated in nanopores with different hydrogel coating thicknesses. The hydrogel coatings were estimated to have smaller temperature-induced swelling change in the nanopores compared with the same coatings on planar surfaces.

Graphical abstract: Vapor-based synthesis of ultrathin hydrogel coatings for thermo-responsive nanovalves

Supplementary files

Article information

Article type
Paper
Submitted
16 Feb 2011
Accepted
23 Mar 2011
First published
03 May 2011

J. Mater. Chem., 2011,21, 7946-7952

Vapor-based synthesis of ultrathin hydrogel coatings for thermo-responsive nanovalves

Y. Ye and Y. Mao, J. Mater. Chem., 2011, 21, 7946 DOI: 10.1039/C1JM10713E

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