Patent classifications
C07B35/02
Conversion of alcohols to linear and branched functionalized alkanes
Embodiments herein concerns the eco-friendly conversion of simple alcohols to linear or branched functionalized alkanes, by integrated catalysis. The alcohols are firstlyoxidized either chemically or enzymatically to the corresponding aldehydes or ketones, followed by aldol condensations using a catalyst to give the corresponding enals or enones. The enals or enones are subsequently and selectively hydrogenated using a recyclable heterogeneous metal catalyst, organocatalyst or an enzyme to provide linear or branched functionalized alkanes with an aldehyde, keto- or alcohol functionality. The process is also iterative and can be further extended by repeating the above integrated catalysis for producing long-chain functionalized alkanes from simple alcohols.
Methods and intermediates for the preparation of omacetaxine and cephalotaxine derivatives thereof
The present invention relates to methods and intermediates for the preparation of omacetaxine and cephalotaxine derivatives thereof. The resulting products are useful in the treatment of proliferative diseases and infectious diseases.
Methods and intermediates for the preparation of omacetaxine and cephalotaxine derivatives thereof
The present invention relates to methods and intermediates for the preparation of omacetaxine and cephalotaxine derivatives thereof. The resulting products are useful in the treatment of proliferative diseases and infectious diseases.
Processes for preparing an FGFR inhibitor
To an appropriate reactor equipped with mechanical stirrer was charged acetic acid (12 L), tert-butyl 4-(3-(6-(3,5-dimethoxyphenyl)-2-(methylthio)-7-oxopyrido[2,3-d]pyrimidin-8(7H)-yl)propyl)piperazine-1-carboxylate (2000 g) and triethylamine (639 g, 2.3 eq.). Internal temperature was adjusted to approximately 20 C. and N-chlorosuccinimide (1651 g, 4.5 eq.) was added at 20-30 C. Reaction was stirred for 2 hours. Ethyl acetate (30 L) was added. 5% aqueous NaCl solution (20 L) was added. The organic layer was separated and the aqueous layer was extracted with EtOAc. The combined organic layers were washed with 30% aqueous potassium carbonate solution (14 L). The organic layer was concentrated to 12 L and used for next step directly.
Processes for preparing an FGFR inhibitor
To an appropriate reactor equipped with mechanical stirrer was charged acetic acid (12 L), tert-butyl 4-(3-(6-(3,5-dimethoxyphenyl)-2-(methylthio)-7-oxopyrido[2,3-d]pyrimidin-8(7H)-yl)propyl)piperazine-1-carboxylate (2000 g) and triethylamine (639 g, 2.3 eq.). Internal temperature was adjusted to approximately 20 C. and N-chlorosuccinimide (1651 g, 4.5 eq.) was added at 20-30 C. Reaction was stirred for 2 hours. Ethyl acetate (30 L) was added. 5% aqueous NaCl solution (20 L) was added. The organic layer was separated and the aqueous layer was extracted with EtOAc. The combined organic layers were washed with 30% aqueous potassium carbonate solution (14 L). The organic layer was concentrated to 12 L and used for next step directly.
Conversion Of Alcohols To Linear And Branched Functionalized Alkanes
Embodiments herein concerns the eco-friendly conversion of simple alcohols to linear or branched functionalized alkanes, by integrated catalysis. The alcohols are firstlyoxidized either chemically or enzymatically to the corresponding aldehydes or ketones, followed by aldol condensations using a catalyst to give the corresponding enals or enones. The enals or enones are subsequently and selectively hydrogenated using a recyclable heterogeneous metal catalyst, organocatalyst or an enzyme to provide linear or branched functionalized alkanes with an aldehyde, keto- or alcohol functionality. The process is also iterative and can be further extended by repeating the above integrated catalysis for producing long-chain functionalized alkanes from simple alcohols.
Conversion Of Alcohols To Linear And Branched Functionalized Alkanes
Embodiments herein concerns the eco-friendly conversion of simple alcohols to linear or branched functionalized alkanes, by integrated catalysis. The alcohols are firstlyoxidized either chemically or enzymatically to the corresponding aldehydes or ketones, followed by aldol condensations using a catalyst to give the corresponding enals or enones. The enals or enones are subsequently and selectively hydrogenated using a recyclable heterogeneous metal catalyst, organocatalyst or an enzyme to provide linear or branched functionalized alkanes with an aldehyde, keto- or alcohol functionality. The process is also iterative and can be further extended by repeating the above integrated catalysis for producing long-chain functionalized alkanes from simple alcohols.
AN ECO-FRIENDLY PROCESS FOR HYDROGENATION OR/AND HYDRODEOXYGENATION OF ORGANIC COMPOUND USING HYDROUS RUTHENIUM OXIDE CATALYST
The invention discloses a process for hydrogenation (alkenes, carbonyl compounds and aromatics) and hydrodeoxygenation (methoxy phenols) of organic molecules using hydrous ruthenium oxide (HRO) and its supported form as a recyclable heterogeneous catalyst in aqueous medium with good yield of desired products (70-100%) under mild reaction conditions.
REDUCTION CATALYST BODY FOR CARBON DIOXIDE AND MANUFACTURING METHOD THEREOF, REDUCTION ELECTRODE, AND REDUCTION REACTION DEVICE
A reduction catalyst body for carbon dioxide of an embodiment includes a metal layer, and a projection provided on the metal layer. The projection is constituted of an aggregate of fine metal particles, and possesses a polyhedral structure having surfaces of three faces or more of a polygon. The projection has a site of reducing carbon dioxide, as at least a part of the surfaces.
Process for preparing indacaterol and salts thereof
The present invention relates to a process for preparing indacaterol or salts thereof. The process comprises of forming compound of Formula 1 by reacting compound of Formula 2 and compound of Formula 3 in the presence of a solvent to Form compound of Formula 4, which on removal of the protecting groups forms compound of Formula 1.