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Artículo

Large-pore mesoporous silica: template design, thin film preparation and biomolecules infiltration

Alberti, SebastiánIcon ; Schmidt, Sonja; Hageneder, Simone; Angelome, Paula CeciliaIcon ; Soler Illia, Galo Juan de Avila ArturoIcon ; Vana, Philipp; Dostalek, Jakub; Azzaroni, OmarIcon ; Knoll, Wolfgang
Fecha de publicación: 07/2023
Editorial: Royal Society of Chemistry
Revista: Materials Chemistry Frontiers
ISSN: 2052-1537
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Nano-materiales

Resumen

Nanopores have been applied in the development of artificial biocatalytic systems, controlled drug delivery, and solid-state sensing devices. The interaction of biomacromolecules with surfaces show a dependence on the nanopore diameter, crucial in their ability to infiltrate porous materials. In this context, ordered mesoporous materials obtained by evaporation-induced self-assembly are model materials to test pore-biomolecule interactions. Nevertheless, these materials are generally restricted to pore diameters within the 2-10 nm range, therefore, new polymers as templating agents hold potential to provide an easy reproducible route for the synthesis of mesoporous silica thin films (MTF) with pore diameters above 10 nm without the use of swelling or additional structuring agents. Here, we present a novel and simple approach towards large pore MTF through the combination of supramolecular templating and phase separation with tailor-made block co-polymers. Accurate tuning of the oxide pore size distribution (with small mesopores between 13-18 nm diameter) is achieved by controlling the length and the nature of the hydrophilic polymer block used as a template through a simple reversible addition-fragmentation chain transfer (RAFT) polymerization approach. The importance of these features is highlighted by showing the capability that these new materials offer for biomolecule infiltration benchmarked against the widespread MTF prepared using pluronic F127 as a template. Effect of protein to pore diameter ratio, protein location and effect of pH and ionic strength is briefly tested and discussed.
Palabras clave: RAFT POLYMERIZATION , POROUS MATERIALS , THIN FILMS , PROTEIN INFILTRATION
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info:eu-repo/semantics/openAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution 2.5 Unported (CC BY 2.5)
Identificadores
URI: http://hdl.handle.net/11336/228546
URL: http://pubs.rsc.org/en/Content/ArticleLanding/2023/QM/D3QM00378G
DOI: http://dx.doi.org/10.1039/D3QM00378G
Colecciones
Articulos (UE-INN - NODO CONSTITUYENTES)
Articulos de UNIDAD EJECUTORA INSTITUTO DE NANOCIENCIA Y NANOTECNOLOGIA - NODO CONSTITUYENTES
Articulos(INIFTA)
Articulos de INST.DE INV.FISICOQUIMICAS TEORICAS Y APLIC.
Citación
Alberti, Sebastián; Schmidt, Sonja; Hageneder, Simone; Angelome, Paula Cecilia; Soler Illia, Galo Juan de Avila Arturo; et al.; Large-pore mesoporous silica: template design, thin film preparation and biomolecules infiltration; Royal Society of Chemistry; Materials Chemistry Frontiers; 7; 18; 7-2023; 4142-4151
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