LAUSR.org creates dashboard-style pages of related content for over 1.5 million academic articles. Sign Up to like articles & get recommendations!

In situ synthesis and characterization of sulfonic acid functionalized hierarchical silica monoliths

Photo from wikipedia

Surface functionalization of porous materials with sulfonic acid (SO3H) groups is of particular interest in applications involving ion exchange, acidic catalysis and proton conduction. Macro-mesoporous silica monoliths are ideal support… Click to show full abstract

Surface functionalization of porous materials with sulfonic acid (SO3H) groups is of particular interest in applications involving ion exchange, acidic catalysis and proton conduction. Macro-mesoporous silica monoliths are ideal support structures for these applications, as they combine advection-dominated mass transport in the macropores with short diffusion lengths and a large surface area (available for functionalization) in their mesoporous skeleton. Here, we report on SO3H functionalized sol–gel silica monoliths with bimodal pore systems exhibiting macro- and mesoporosity, prepared according to a simple, efficient in situ synthesis protocol. Based on the co-condensation approach, thiol groups were introduced homogeneously into the pore structure, followed by their oxidation to SO3H groups and the simultaneous removal of the template. The macropore size, specific surface area, and coverage with SO3H groups are easily adjusted in this synthesis route. Importantly, the hybrid monoliths have a substantially narrower mesopore size distribution (relative standard deviation ~25%) than conventional sol–gel materials (>40%) and can be engineered crack-free in a robust column design (suitable for high-pressure flow-through operation) with mean mesopore size down to ~7 nm. They are characterized by IR spectroscopy, thermogravimetry, and elemental analysis as well as 13C and 29Si solid state NMR to corroborate the simple, efficient combination of sol–gel-based material synthesis, surface functionalization, and template removal (i.e., polymer extraction). Complementary, inverse gas chromatography is presented as a new approach to characterize the incorporated SO3H groups via surface energy analysis and particularly resolve changes in the Lewis acid–base characteristics engendered by that functionalization. Co-condensation sol–gel process for hierarchical, sulfonic acid functionalized silica monoliths. Simultaneous extraction of the template (PEO) and oxidation of thiol to sulfonic acid groups. Macropore size, specific surface area, and surface coverage with sulfonic acid groups adjusted. Comprehensive characterization including surface energy analysis by inverse gas chromatography. Co-condensation sol–gel process for hierarchical, sulfonic acid functionalized silica monoliths. Simultaneous extraction of the template (PEO) and oxidation of thiol to sulfonic acid groups. Macropore size, specific surface area, and surface coverage with sulfonic acid groups adjusted. Comprehensive characterization including surface energy analysis by inverse gas chromatography.

Keywords: surface; sol gel; sulfonic acid; silica monoliths

Journal Title: Journal of Sol-Gel Science and Technology
Year Published: 2020

Link to full text (if available)


Share on Social Media:                               Sign Up to like & get
recommendations!

Related content

More Information              News              Social Media              Video              Recommended



                Click one of the above tabs to view related content.