6533b7dcfe1ef96bd1271709

RESEARCH PRODUCT

Colloidally Confined Crystallization of Highly Efficient Ammonium Phosphomolybdate Catalysts

Rafael Muñoz-espíRafael Muñoz-espíSilvia GrossKatharina LandfesterKatrin KirchhoffAlice AntonelloCesare BenedettiViktor FischerFrancisco Pérez-plaMaria Kokkinopoulou

subject

Materials sciencecrystallizationminiemulsionNanoparticle02 engineering and technology010402 general chemistry01 natural sciencesAmmonium phosphomolybdatelaw.inventionCatalysischemistry.chemical_compoundColloidmolybdenumlawGeneral Materials ScienceCrystallizationPorositycatalysisnanoparticlecatalysis; crystallization; miniemulsion; molybdenum; nanoparticle; Materials Science (all)021001 nanoscience & nanotechnology0104 chemical sciencesMiniemulsionChemical engineeringchemistryMaterials Science (all)Particle size0210 nano-technology

description

Nanodroplets in inverse miniemulsions provide a colloidal confinement for the crystallization of ammonium phosphomolybdate (APM), influencing the resulting particle size. The effects of the space confinement are investigated by comparing the crystallization of analogous materials both in miniemulsion and in bulk solution. Both routes result in particles with a rhombododecahedral morphology, but the ones produced in miniemulsion have sizes between 40 and 90 nm, 3 orders of magnitude smaller than the ones obtained in bulk solution. The catalytic activity of the materials is studied by taking the epoxidation of cis-cyclooctene as a model reaction. The miniemulsion route yields APM particles catalytically much more active than analogous samples produced in bulk solution, which can be explained by their higher dispersibility in organic solvents, their higher surface area, and their higher porosity. Inorganic phosphate salt precursors are compared with organic phosphate sources. APM nanoparticles prepared in miniemulsion from d-glucose-6-phosphate and O-phospho-dl-serine yield a conversion in the epoxidation reaction of more than 90% after only 1 h, compared to 30% for materials prepared in bulk solution. In addition, the catalysts prepared in miniemulsion display a promising recyclability.

https://doi.org/10.1021/acsami.8b01617