Rhodium-catalyzed intramolecular carboacylation of alkenes, achieved using quinolinyl ketones containing tethered alkenes, proceeds via the activation and functionalization of a carbon-carbon single bond. This transformation has been demonstrated using RhCl(PPh3)(3) and [Rh(C2H4)(2)Cl](2) catalysts. Mechanistic investigations of these systems, including determination of the rate law and kinetic isotope effects, were utilized to identify a change in mechanism with substrate. With each catalyst, the transformation occurs via rate-limiting carbon-carbon bond activation for species with minimal alkene substitution, but alkene insertion becomes rate-limiting for more sterically encumbered substrates. Hammett studies and analysis of a series of s...
Carbon-carbon single bonds are some of the most inert and stable bonds in chemistry. Very few metho...
The work described in this thesis documents the development of new rhodium(I)-catalysed methodologie...
An alternative mechanism for intramolecular C−C coupling between heterocycles and alkenes with rhodi...
Rhodium-catalyzed intramolecular carboacylation of alkenes, achieved using quinolinyl ketones contai...
Carbon-carbon single bonds form the framework for many organic molecules, but in most cases, they ca...
Carbon-carbon single bond activation reactions promise to revolutionize organic synthesis by opening...
ABSTRACT The rhodium-catalyzed intramolecular carboacylation of quinolinyl ketones serves as an idea...
The rhodium-catalyzed intramolecular carboacylation of quinolinyl ketones serves as an ideal subjec...
Carbon-carbon sigma bonds are known to be very stable under most reaction conditions; however, throu...
Intramolecular alkene carboacylation has previously been achieved under rhodium catalysis using quin...
Carbon-carbon single bonds are highly stable and inert under most reaction conditions, but can be ma...
Though the carbon-carbon single bond is thought to be exceptionally stable because of a lack of pola...
Carbon-carbon single bonds form the framework for many organic molecules, but in most cases, they ca...
Intramolecular alkene carboacylation has previously been achieved under rhodium catalysis using quin...
Intramolecular alkene carboacylation has previously been achieved under rhodium catalysis using quin...
Carbon-carbon single bonds are some of the most inert and stable bonds in chemistry. Very few metho...
The work described in this thesis documents the development of new rhodium(I)-catalysed methodologie...
An alternative mechanism for intramolecular C−C coupling between heterocycles and alkenes with rhodi...
Rhodium-catalyzed intramolecular carboacylation of alkenes, achieved using quinolinyl ketones contai...
Carbon-carbon single bonds form the framework for many organic molecules, but in most cases, they ca...
Carbon-carbon single bond activation reactions promise to revolutionize organic synthesis by opening...
ABSTRACT The rhodium-catalyzed intramolecular carboacylation of quinolinyl ketones serves as an idea...
The rhodium-catalyzed intramolecular carboacylation of quinolinyl ketones serves as an ideal subjec...
Carbon-carbon sigma bonds are known to be very stable under most reaction conditions; however, throu...
Intramolecular alkene carboacylation has previously been achieved under rhodium catalysis using quin...
Carbon-carbon single bonds are highly stable and inert under most reaction conditions, but can be ma...
Though the carbon-carbon single bond is thought to be exceptionally stable because of a lack of pola...
Carbon-carbon single bonds form the framework for many organic molecules, but in most cases, they ca...
Intramolecular alkene carboacylation has previously been achieved under rhodium catalysis using quin...
Intramolecular alkene carboacylation has previously been achieved under rhodium catalysis using quin...
Carbon-carbon single bonds are some of the most inert and stable bonds in chemistry. Very few metho...
The work described in this thesis documents the development of new rhodium(I)-catalysed methodologie...
An alternative mechanism for intramolecular C−C coupling between heterocycles and alkenes with rhodi...