Self-assembly of supramolecular triarylamine nanowires in mesoporous silica and biocompatible electrodes thereof - Université de Montpellier
Article Dans Une Revue Nanoscale Année : 2016

Self-assembly of supramolecular triarylamine nanowires in mesoporous silica and biocompatible electrodes thereof

Résumé

Biocompatible silica-based mesoporous materials, which present high surface areas combined with uniform distribution of nanopores, can be organized in functional nanopatterns for a number of applications. However, silica is by essence an electrically insulating material which precludes applications for electro-chemical devices. The formation of hybrid electroactive silica nanostructures is thus expected to be of great interest for the design of biocompatible conducting materials such as bioelectrodes. Here we show that we can grow supramolecular stacks of triarylamine molecules in the confined space of oriented mesopores of a silica nanolayer covering a gold electrode. This addressable bottom-up construction is triggered from solution simply by light irradiation. The resulting self-assembled nanowires act as highly conducting electronic pathways crossing the silica layer. They allow very efficient charge transfer from the redox species in solution to the gold surface. We demonstrate the potential of these hybrid constitutional materials by implementing them as biocathodes and by measuring laccase activity that reduces dioxygen to produce water.

Domaines

Chimie
Fichier principal
Vignette du fichier
c5nr06977g.pdf (2.38 Mo) Télécharger le fichier
Origine Fichiers éditeurs autorisés sur une archive ouverte

Dates et versions

hal-01681654 , version 1 (22-10-2024)

Identifiants

Citer

Erol-Dan Licsandru, Susanne Schneider, Sophie Tingry, Thomas Ellis, Emilie Moulin, et al.. Self-assembly of supramolecular triarylamine nanowires in mesoporous silica and biocompatible electrodes thereof. Nanoscale, 2016, 8 (10), pp.5605 - 5611. ⟨10.1039/c5nr06977g⟩. ⟨hal-01681654⟩
138 Consultations
0 Téléchargements

Altmetric

Partager

More