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1.
ChemSusChem ; 9(17): 2343-7, 2016 09 08.
Article in English | MEDLINE | ID: mdl-27491504

ABSTRACT

Methylated amines are highly important for a variety of pharmaceutical and agrochemical applications. Existing routes for their formation result in the production of large amounts of waste or require high reaction temperatures, both of which impact the ecological and economical footprint of the methodologies. Herein, we report the ruthenium-catalyzed reductive methylation of a range of aliphatic amines, using paraformaldehyde as both substrate and hydrogen source, in combination with water. This reaction proceeds under mild aqueous reaction conditions. Additionally the use of a secondary phase for catalyst retention and recycling has been investigated with promising results.


Subject(s)
Amines/chemistry , Formaldehyde/chemistry , Polymers/chemistry , Ruthenium/chemistry , Water/chemistry , Methylation
2.
Chemistry ; 22(33): 11568-73, 2016 Aug 08.
Article in English | MEDLINE | ID: mdl-27380865

ABSTRACT

The catalytic networks of methylotrophic organisms, featuring redox enzymes for the activation of one-carbon moieties, can serve as great inspiration in the development of novel homogeneously catalyzed pathways for the interconversion of C1 molecules at ambient conditions. An imidazolium-tagged arene-ruthenium complex was identified as an effective functional mimic of the bacterial formaldehyde dismutase, which provides a new and highly selective route for the conversion of formaldehyde to methanol in absence of any external reducing agents. Moreover, secondary amines are reductively methylated by the organometallic dismutase mimic in a redox self-sufficient manner with formaldehyde acting both as carbon source and reducing agent.


Subject(s)
Alcohol Oxidoreductases/chemistry , Amines/chemistry , Bacteria/chemistry , Coordination Complexes/chemistry , Methanol/chemistry , Ruthenium/chemistry , Bacteria/metabolism , Catalysis , Coordination Complexes/metabolism , Oxidation-Reduction , Ruthenium/metabolism
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