Anion-binding catalysis has emerged as a powerful principle for the development of highly enantioselective transformations. This strategy relies on the ability of dual hydrogen-bond donors to promote anion abstraction from neutral substrates to generate cationic electrophiles such as iminium ions and oxocarbenium ions. Activation of nucleophiles in anion-binding reactions can further expand the scope of both electrophiles and nucleophiles in this mode of catalysis. The research described in this dissertation explores the use of thiourea catalysts to activate weak nucleophiles in two distinct reactions. In Chapter 1, a diastereoselective glycosylation reaction of glycosyl halides is reported. The transformation is catalyzed by macrocyclic b...
A highly enantio- and diastereoselective thiourea-catalyzed dearomatization of isoquinolines employi...
A highly enantio- and diastereoselective thiourea-catalyzed dearomatization of isoquinolines employi...
University of Minnesota Ph.D. dissertation.July 2018. Major: Chemistry. Advisor: Steven Kass. 1 com...
Over the past decade, organocatalysis has emerged as a thriving area of research in the field of sma...
The dual catalytic approach in asymmetric catalysis has gained considerable attention in recent time...
Ion-binding organocatalysis is an emerging field that has the potential to control the stereochemica...
Asymmetric, catalytic reactions of oxocarbenium ions are reported. Simple, chiral urea and thiourea ...
Small organic and metal-containing molecules (molecular mass <1,000) can catalyse synthetically usef...
Leveraging the anion binding properties of thioureas, we show that the activity of known well-perfor...
Leveraging the anion binding properties of thioureas, we show that the activity of known well-perfor...
Leveraging the anion binding properties of thioureas, we show that the activity of known well-perfor...
Self-assembly is an efficient method for generating large numbers of structurally diverse catalysts ...
We describe the rational design of a linked, bis-thiourea catalyst with enhanced activity relative t...
A highly enantio- and diastereoselective thiourea-catalyzed dearomatization of isoquinolines employi...
Self-assembly is an efficient method for generating large numbers of structurally diverse catalysts ...
A highly enantio- and diastereoselective thiourea-catalyzed dearomatization of isoquinolines employi...
A highly enantio- and diastereoselective thiourea-catalyzed dearomatization of isoquinolines employi...
University of Minnesota Ph.D. dissertation.July 2018. Major: Chemistry. Advisor: Steven Kass. 1 com...
Over the past decade, organocatalysis has emerged as a thriving area of research in the field of sma...
The dual catalytic approach in asymmetric catalysis has gained considerable attention in recent time...
Ion-binding organocatalysis is an emerging field that has the potential to control the stereochemica...
Asymmetric, catalytic reactions of oxocarbenium ions are reported. Simple, chiral urea and thiourea ...
Small organic and metal-containing molecules (molecular mass <1,000) can catalyse synthetically usef...
Leveraging the anion binding properties of thioureas, we show that the activity of known well-perfor...
Leveraging the anion binding properties of thioureas, we show that the activity of known well-perfor...
Leveraging the anion binding properties of thioureas, we show that the activity of known well-perfor...
Self-assembly is an efficient method for generating large numbers of structurally diverse catalysts ...
We describe the rational design of a linked, bis-thiourea catalyst with enhanced activity relative t...
A highly enantio- and diastereoselective thiourea-catalyzed dearomatization of isoquinolines employi...
Self-assembly is an efficient method for generating large numbers of structurally diverse catalysts ...
A highly enantio- and diastereoselective thiourea-catalyzed dearomatization of isoquinolines employi...
A highly enantio- and diastereoselective thiourea-catalyzed dearomatization of isoquinolines employi...
University of Minnesota Ph.D. dissertation.July 2018. Major: Chemistry. Advisor: Steven Kass. 1 com...