Monodispersed Pd-nanoparticles (similar to 8nm) prepared via a modified microemulsion method were deposited on active carbon fibers (ACF) fabrics and studied in a semi-batch 1-hexyne liquid-phase hydrogenation. The catalyst Pd(0.45 wt%)/ACF demonstrated > 96% selectivity to 1-hexene up to 90% of conversion. Initial activity at 303 K, 1.3 MPa pressure, in D-heptane as a solvent was 0.14 kmo1H(2) kg(Pd)(-1) S-1. Assuming a Langmuir-Hinshelwood kinetics with a weak hydrogen adsorption a kinetic model was developed. It was shown to be consistent with the experimental data and allowed determining the main kinetic parameters. (c) 2006 Elsevier Ltd. All rights reserved
Pd nanoparticles supported on SiO2, Si3N4 and Al2O3 were studied to examine the effect of particle s...
Palladium nanohexagons were prepared using a seed-mediated method. Their catalytic performance in 2-...
This work is aimed at evaluating the catalytic performance of Pd/C catalysts based on size-controlle...
Structured palladium catalysts suitable for three-phase reactions have been developed based on woven...
The principal objective of this thesis is the development of a palladium catalyst supported on woven...
A novel method for isolation of monodispersed Pd nanoparticles from a reverse microemulsion was deve...
The structure sensitivity of a liquid-phase 1-hexyne hydrogenation was studied using monodispersed n...
We report the preparation and hydrogenation performance of a single-site palladium catalyst that was...
The synthesis of (R)-1-phenylethyl acetate starting from acetophenone was investigated in this work....
The catalytic performance of Pd-nanoparticle catalysts for the selective hydrogenation of alkynes at...
Monodispersed Pd nanoparticles (NPs) have been prepared by colloidal technique and deposited on a st...
Pd nanoparticles (PdNPs) stabilized by methyl cellulose (MC) were synthesized in an aqueous solution...
Pd nanoparticles (2 nm) stabilized in the micelle core of poly(ethylene oxide)-block-poly(2-vinylpyr...
BACKGROUND: Heterogeneous hydrogenation catalysts for fine chemical synthesis are a convenient alter...
We hydrogenated biomass-derived 5-hydroxymethylfurfural (HMF) in aqueous medium in a reaction cataly...
Pd nanoparticles supported on SiO2, Si3N4 and Al2O3 were studied to examine the effect of particle s...
Palladium nanohexagons were prepared using a seed-mediated method. Their catalytic performance in 2-...
This work is aimed at evaluating the catalytic performance of Pd/C catalysts based on size-controlle...
Structured palladium catalysts suitable for three-phase reactions have been developed based on woven...
The principal objective of this thesis is the development of a palladium catalyst supported on woven...
A novel method for isolation of monodispersed Pd nanoparticles from a reverse microemulsion was deve...
The structure sensitivity of a liquid-phase 1-hexyne hydrogenation was studied using monodispersed n...
We report the preparation and hydrogenation performance of a single-site palladium catalyst that was...
The synthesis of (R)-1-phenylethyl acetate starting from acetophenone was investigated in this work....
The catalytic performance of Pd-nanoparticle catalysts for the selective hydrogenation of alkynes at...
Monodispersed Pd nanoparticles (NPs) have been prepared by colloidal technique and deposited on a st...
Pd nanoparticles (PdNPs) stabilized by methyl cellulose (MC) were synthesized in an aqueous solution...
Pd nanoparticles (2 nm) stabilized in the micelle core of poly(ethylene oxide)-block-poly(2-vinylpyr...
BACKGROUND: Heterogeneous hydrogenation catalysts for fine chemical synthesis are a convenient alter...
We hydrogenated biomass-derived 5-hydroxymethylfurfural (HMF) in aqueous medium in a reaction cataly...
Pd nanoparticles supported on SiO2, Si3N4 and Al2O3 were studied to examine the effect of particle s...
Palladium nanohexagons were prepared using a seed-mediated method. Their catalytic performance in 2-...
This work is aimed at evaluating the catalytic performance of Pd/C catalysts based on size-controlle...