Macroporous Silica Foams Fabricated via Soft Colloid Templating.

Small Methods

Department of Physics and Fribourg Center for Nanomaterials (FriMat), University of Fribourg, CH-1700, Fribourg, Switzerland.

Published: April 2022

Macroporous materials with controlled pore sizes are of high scientific and technological interest, due to their low specific weight, as well as unique acoustic, thermal, or optical properties. Solid foams made of titania, silica, or silicon, as representative materials, have been previously obtained with several hundred nanometer pore sizes, by using sacrificial templates such as spherical emulsion droplets or colloidal particles. Macroporous structures in particular are excellent candidates as photonic materials with applications in structural coloration and photonic bandgap devices. However, whereas using spherical building blocks as templates may provide tight control over pore shape and size, it results in materials with an often unfavorable local topology. Templating dry-foam or compressed-emulsion structures appear as attractive alternatives, but have not been demonstrated so far for submicron pore sizes. Herein, the use of soft, flexible microgel colloids decorated with silica nanoparticles as templates of macroporous foams is reported. These purposely synthesized core-shell colloids are assembled at ultra-high effective volume fractions by centrifuging and thermal swelling, thereby resulting in uniform disordered materials with facetted pores, mimicking dry foams. After removal of the polymer component via calcination, lightweight pure silica structures are obtained with a well-defined cellular or network topology.

Download full-text PDF

Source
http://dx.doi.org/10.1002/smtd.202101491DOI Listing

Publication Analysis

Top Keywords

pore sizes
12
materials
5
macroporous
4
macroporous silica
4
foams
4
silica foams
4
foams fabricated
4
fabricated soft
4
soft colloid
4
colloid templating
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!