B01J2231/321

SYNTHESIS OF ALKYNONES VIA CARBONYLATIVE SONOGASHIRA COUPLING REACTIONS CATALYZED BY PD(II)-N-HETEROCYCLIC CARBENE-PYRIDINE COMPLEXES
20220118435 · 2022-04-21 ·

This disclosure relates to N-substituted Pd(II)-N-heterocyclic carbene-pyridine complexes, methods of preparing the complexes, and methods of using the complexes in Sonogashira coupling reactions.

Catalyst composition for hydroformylation and method of preparing aldehyde using the same

The present invention relates to a catalyst composition for hydroformylation and a method of preparing an aldehyde using the same. More specifically, the present invention provides a catalyst composition for hydroformylation including a specific phosphite-based ligand and a transition metal compound in a specific amount range, thereby being capable of greatly lowering a use amount of an expensive transition metal compound and exhibiting excellent catalyst activity or stability. In addition, by using the catalyst composition in hydroformylation, excellent reaction efficiency may be provided and iso-aldehyde may be generated in high yield.

Branched Alcohols
20220024837 · 2022-01-27 · ·

A process for producing isomerized olefins, branched aldehydes and branched alcohols through isomerization, hydroformylation and hydrogenation.

Methods to rejuvenate a deactivated hydroformylation catalyst solution

Disclosed herein are methods to rejuvenate a deactivated hydroformylation catalyst solution wherein the solution comprises rhodium, polyphosphoramidite ligands, and polyphosphoramidite ligand degradation products. In some embodiments, such methods comprise adding a peroxide to the deactivated hydroformylation catalyst solution.

METHODS OF CONTROLLING HYDROFORMYLATION PROCESSES
20210362141 · 2021-11-25 ·

The present invention relates to methods of controlling hydroformylation processes for producing normal (N) and iso (I) aldehydes at a N:I ratio. In one aspect, a method of controlling a hydroformylation process comprises contacting an olefin with carbon monoxide, hydrogen and a catalyst, the catalyst comprising (A) a transition metal, (B) a monophosphine, and (C) a tetraphosphine having the structure described herein, the contacting conducted in one or more reaction zones and at hydroformylation conditions to produce a blend of normal (N) and iso (I) aldehydes at a N:I ratio, the method comprising at least one of increasing the N:I ratio by adding additional tetraphosphine to a reaction zone; decreasing the N:I ratio by adding additional monophosphine to a reaction zone; or increasing the N:I ratio by volatilization of the free monophosphine.

METHOD FOR PREPARING CYCLIC CARBONATE
20210355094 · 2021-11-18 ·

The present invention provides a method for preparing a cyclic carbonate, which has the advantages of high yield, mild reaction conditions, high catalytic efficiency under room temperature and 1 atm pressure conditions, and wide substrate scopes. It is not only suitable for monosubstituted epoxides, but also suitable for disubstituted epoxides. The method comprises the step of reacting epoxides of Formula (I) with carbon dioxide in the presence of a quaternary ammonium salt and a catalyst, to obtain a cyclic carbonate of Formula (II). The reaction formula is:

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Process for preparing short-chain olefins in the gas phase

A hydroformylation process can be used for short-chain olefins, especially C2 to C5 olefins, wherein the catalyst system is heterogenized on a support that contains a porous ceramic material. Systems can also be used for carrying out said process.

Process for the hydroformylation of olefins using a cobalt precatalyst and a diphosphine ligand

Process for the hydroformylation of olefins using a cobalt precatalyst and a diphosphine ligand.

Ru-catalyzed domino hydroformylation/hydrogenation/esterification using phosphine ligands

Ru-catalysed domino hydroformylation/hydrogenation/esterification using phosphine ligands.

Process for hydroformylation of olefins using Pt and iodine

Process for hydroformylation of olefins using Pt and iodine.