Several nanoporous platforms were functionalized with pH-responsive poly(methacrylic acid) (PMAA) brushes using surface-initiated atom transfer radical polymerization (SI-ATRP). The growth of the PMAA brush and its pH-responsive behavior from the nanoporous platforms were confirmed by scanning electron microscopy (SEM), Fourier transform infrared (FTIR) spectroscopy, and atomic force microscopy (AFM). The swelling behavior of the pH-responsive PMAA brushes grafted only from the nanopore walls was investigated by AFM in aqueous liquid environment with pH values of 4 and 8. AFM images displayed open nanopores at pH 4 and closed ones at pH 8, which rationalizes their use as gating platforms. Ion conductivity across the nanopores was investigated with current voltage measurements at various pH values. Enhanced higher resistance across the nanopores was observed in a neutral polymer brush state (lower pH values) and lower resistance when the brush was charged (higher pH values). By adding a fluorescent dye in an environment of pH 4 or pH 8 at one side of the PMAA-brush functionalized nanopore array chips, diffusion across the nanopores was followed. These experiments displayed faster diffusion rates of the fluorescent molecules at pH 4 (PMAA neutral state, open pores) and slower diffusion at pH 8 (PMAA charged state, closed pores) showing the potential of this technology toward nanoscale valve applications.

Switching Transport through Nanopores with pH-Responsive Polymer Brushes for Controlled Ion Permeability / G., Wilhelmina De Groot; Santonicola, Mariagabriella; Kaori, Sugihara; Tomaso, Zambelli; Erik, Reimhult; Janos, Voros; G., Julius Vancso. - In: ACS APPLIED MATERIALS & INTERFACES. - ISSN 1944-8244. - STAMPA. - 5:4(2013), pp. 1400-1407. [10.1021/am302820y]

Switching Transport through Nanopores with pH-Responsive Polymer Brushes for Controlled Ion Permeability

SANTONICOLA, MARIAGABRIELLA;
2013

Abstract

Several nanoporous platforms were functionalized with pH-responsive poly(methacrylic acid) (PMAA) brushes using surface-initiated atom transfer radical polymerization (SI-ATRP). The growth of the PMAA brush and its pH-responsive behavior from the nanoporous platforms were confirmed by scanning electron microscopy (SEM), Fourier transform infrared (FTIR) spectroscopy, and atomic force microscopy (AFM). The swelling behavior of the pH-responsive PMAA brushes grafted only from the nanopore walls was investigated by AFM in aqueous liquid environment with pH values of 4 and 8. AFM images displayed open nanopores at pH 4 and closed ones at pH 8, which rationalizes their use as gating platforms. Ion conductivity across the nanopores was investigated with current voltage measurements at various pH values. Enhanced higher resistance across the nanopores was observed in a neutral polymer brush state (lower pH values) and lower resistance when the brush was charged (higher pH values). By adding a fluorescent dye in an environment of pH 4 or pH 8 at one side of the PMAA-brush functionalized nanopore array chips, diffusion across the nanopores was followed. These experiments displayed faster diffusion rates of the fluorescent molecules at pH 4 (PMAA neutral state, open pores) and slower diffusion at pH 8 (PMAA charged state, closed pores) showing the potential of this technology toward nanoscale valve applications.
2013
polymer brushes; ion gating; grafting from surfaces; ph-responsive polymer brushes; atomic force microscopy; surface functionalization; nanopores; poly(methacrylic acid); stimulus responsive polymers
01 Pubblicazione su rivista::01a Articolo in rivista
Switching Transport through Nanopores with pH-Responsive Polymer Brushes for Controlled Ion Permeability / G., Wilhelmina De Groot; Santonicola, Mariagabriella; Kaori, Sugihara; Tomaso, Zambelli; Erik, Reimhult; Janos, Voros; G., Julius Vancso. - In: ACS APPLIED MATERIALS & INTERFACES. - ISSN 1944-8244. - STAMPA. - 5:4(2013), pp. 1400-1407. [10.1021/am302820y]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/507491
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