Biofouling-Resistant Porous Membranes with a Precisely Adjustable Pore Diameter via 3D Polymer Grafting.

biocompatibility particle dynamic simulations polymer grafting polymer networks porous membranes responsive materials thin films

Journal

ACS applied materials & interfaces
ISSN: 1944-8252
Titre abrégé: ACS Appl Mater Interfaces
Pays: United States
ID NLM: 101504991

Informations de publication

Date de publication:
22 May 2019
Historique:
pubmed: 30 4 2019
medline: 21 11 2019
entrez: 30 4 2019
Statut: ppublish

Résumé

A facile route to biofouling-resistant porous thin-film membranes that can be fine-tuned for specific needs in diverse bioseparation, mass flow control, sensors, and drug delivery applications is reported. The proposed approach is based on combining two distinct macromolecular systems-a cross-linked poly(2-vinyl pyridine) network and a 3D-grafted polyethylene oxide (PEO) layer-in one robust porous material whose porosity can be adjusted within a wide range, covering the macroporous and mesoporous size regimes. Notably, this reconfigurable material maintains its antifouling properties throughout the entire range of pore size configurations because of a dense surface carpet of PEO chains with self-healing properties that are immobilized both onto the surface and inside the polymer network through what was termed 3D grafting. Experimental results are supplemented by computer simulations of a coarse-grained model of a porous membrane that shows qualitatively similar pore swelling behavior.

Identifiants

pubmed: 31033277
doi: 10.1021/acsami.9b06679
doi:

Substances chimiques

Membranes, Artificial 0
Polymers 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

18268-18275

Auteurs

Hidenori Kuroki (H)

Department of Chemistry and Biomolecular Science , Clarkson University , Potsdam , New York 13699-5810 , United States.
Laboratory for Chemistry and Life Science , Tokyo Institute of Technology , R1-17, 4259 Nagatsuta , Midori-ku, Yokohama , Kanagawa 226-8503 , Japan.

Alexey Gruzd (A)

Nanostructured Materials Lab , University of Georgia , Athens , Georgia 30602 , United States.

Igor Tokarev (I)

Department of Chemistry and Biomolecular Science , Clarkson University , Potsdam , New York 13699-5810 , United States.

Taras Patsahan (T)

Department of Computer Simulations of Many-Particle Systems , Institute for Condensed Matter Physics of the National Academy of Sciences of Ukraine , Lviv 79011 , Ukraine.

Jaroslav Ilnytskyi (J)

Department of Computer Simulations of Many-Particle Systems , Institute for Condensed Matter Physics of the National Academy of Sciences of Ukraine , Lviv 79011 , Ukraine.

Karsten Hinrichs (K)

Leibniz-Institut für Analytische Wissenschaften-ISAS-e.V. , 12489 Berlin , Germany.

Sergiy Minko (S)

Department of Chemistry and Biomolecular Science , Clarkson University , Potsdam , New York 13699-5810 , United States.
Nanostructured Materials Lab , University of Georgia , Athens , Georgia 30602 , United States.

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Classifications MeSH