Highly-active platinum nanoparticle-encapsulated alumina-doped resorcinol–formaldehyde carbon composites for asymmetric hydrogenation
Literature Information
Wei Yao, Na Zhang, Renjie Xiong, Ranjith Kumar Kankala, Yongjun Liu, Shile Wang, Xueqin Zhang, Peter H. McBreen
Herein, a new type of highly-active platinum (Pt) nanoparticle encapsulated alumina-doped resorcinol–formaldehyde carbon composite (Al@RFC) is fabricated based on resorcinol–formaldehyde (RF) resin and aluminum acetylacetonate using a one-step carbonization approach and evaluated for an asymmetric hydrogenation (AH) reaction. The carbonization process of RF is essentially completed at 700 °C and resulted in Al@RFC with uniform and ordered porous structures. The Pt/Al@RFC catalysts are decorated with uniformly dispersed Pt nanoparticles of around 4 nm diameter over the Al@RFC support. The prepared catalysts are chirally modified with cinchonidine (CD) to explore the catalytic efficiency of AH of ethyl 2-oxo-4-phenylbutanoate (EOPB). The Pt/Al@RFC catalysts have substantially circumvented the shortcomings of poor repeatability of Pt/Al2O3 and low ee values of Pt/C catalysts, displaying conversion efficiencies and ee values of 99% and 82%, respectively. Furthermore, the catalyst could be reused 16 times. Notably, the optimized catalyst displayed turn-over frequency (TOF) values of more than 80 000 h−1, which is the highest reported activity in this hydrogenation reaction. Graphene formation during the high temperature (700 °C) carbonization process is proposed to play a role in its exceptionally high activity.
Related Literature
Ionic liquid silver salt complexes for propene/propane separation
Friederike Agel, Fee Pitsch, Florian Felix Krull, Peter Schulz, Matthias Wessling, Thomas Melin, Peter Wasserscheid
DOI: 10.1039/C0CP01104E
Using one-step perturbation to predict the folding equilibrium of differently stereochemically substituted β-peptides
Wilfred F. van Gunsteren
DOI: 10.1039/C0CP00833H
Reaction pathways for hydrogen desorption from magnesium hydride/hydroxide composites: bulk and interface effects
F. Leardini, J. R. Ares, J. Bodega, J. F. Fernández, I. J. Ferrer, C. Sánchez
DOI: 10.1039/B912964B
Impedance spectroscopy of H and OH adsorption on stepped single-crystal platinumelectrodes in alkaline and acidic media
K. J. P. Schouten, M. J. T. C. van der Niet, M. T. M. Koper
DOI: 10.1039/C0CP00104J
Chemoselective quantum control of carbonyl bonds in Grignard reactions using shaped laser pulses
Caroline Gollub, Markus Kowalewski, Sebastian Thallmair, Regina de Vivie-Riedle
DOI: 10.1039/C0CP01657H
Mass transport effects in CO bulk electrooxidation on Ptnanoparticles supported on vertically aligned carbon nanofilaments
Pavel S. Ruvinskiy, Antoine Bonnefont, Maryam Bayati, Elena R. Savinova
DOI: 10.1039/C0CP00593B
On the role of mercury in the non-covalent stabilisation of consecutive U–HgII–U metal-mediated nucleic acid base pairs: metallophilic attraction enters the world of nucleic acids
Ladislav Benda, Michal Straka, Yoshiyuki Tanaka, Vladimír Sychrovský
DOI: 10.1039/C0CP01534B
Selective internuclear coupling estimation in the solid-state NMR of multiple-spin systems
Andrea C. Sauerwein, Maria Concistrè, Malcolm H. Levitt
DOI: 10.1039/C0CP01262A
You might also like
What are the main uses of 4-Nitrophenyl phosphate disodium salt hexahydrate (CAS: 333338-18-4)?
4-Nitrophenyl phosphate disodium salt hexahydrate is primarily used as a substra...
What are the main uses of 2-(Trifluoromethyl)-1,3-oxazole-4-carboxylic Acid (CAS: 1060816-01-4)?
2-(Trifluoromethyl)-1,3-oxazole-4-carboxylic Acid (CAS: 1060816-01-4) is widely ...
How should 2-Fluoro-4-biphenylcarboxylic acid (CAS: 137045-30-8) be stored?
2-Fluoro-4-biphenylcarboxylic acid should be stored in a cool, dry place at room...
What industries use Prednisolone-21-Carboxylic Acid (CAS: 61549-70-0)?
Prednisolone-21-Carboxylic Acid is primarily used in the pharmaceutical industry...
How should 4-(Hydrazinomethyl)-1,2,3-benzenetriol (CAS: 3614-72-0) be stored?
4-(Hydrazinomethyl)-1,2,3-benzenetriol (CAS: 3614-72-0) should be stored in a co...
What industries use 4-Amino-1-methyl-1H-pyrazole-5-carboxylic acid hydrochloride (CAS: 92534-70-8)?
4-Amino-1-methyl-1H-pyrazole-5-carboxylic acid hydrochloride (CAS: 92534-70-8) i...
What regulatory guidelines apply to dehydropachymic acid (CAS: 77012-31-8)?
Dehydropachymic acid (CAS: 77012-31-8) is regulated by various agencies. It fall...
What is the market or research trend for 6-[(2,2-Dimethylpropanoyl)amino]nicotinic acid (CAS: 898561-66-5)?
The market and research trends for 6-[(2,2-Dimethylpropanoyl)amino]nicotinic aci...
How should 1,10-Phenanthroline-2,9-dicarbaldehyde (CAS: 57709-62-3) be stored?
1,10-Phenanthroline-2,9-dicarbaldehyde should be stored in a cool, dry place awa...
How is 5-Carbamoyl-11-oxo-10,11-dihydro-5H-dibenzo[b,f]azepin-10-yl acetate (CAS: 113952-21-9) typically synthesized?
5-Carbamoyl-11-oxo-10,11-dihydro-5H-dibenzo[b,f]azepin-10-yl acetate can be synt...
Source Journal
Reaction Chemistry & Engineering

Reaction Chemistry & Engineering is an interdisciplinary journal reporting cutting-edge research focused on enhancing the understanding and efficiency of reactions. Reaction engineering leverages the interface where fundamental molecular chemistry meets chemical engineering and technology. Challenges in chemistry can be overcome by the application of new technologies, while engineers may find improved solutions for process development from the latest developments in reaction chemistry. Reaction Chemistry & Engineering is a unique forum for researchers whose interests span the broad areas of chemical engineering and chemical sciences to come together in solving problems of importance to wider society. All papers should be written to be approachable by readers across the engineering and chemical sciences. Papers that consider multiple scales, from the laboratory up to and including plant scale, are particularly encouraged.














