Towards Rational Design of Asymmetric Catalyst for Organometallic and Organocatalytic Reactions

This thesis deals with synthetically modified chiral molecules and their application in asymmetric catalysis. The first part of the thesis describes the use of commercially available chiral diamine ligands in the iridium catalyzed transfer hydrogenation of aromatic ketones. The chiral diamine ligand...

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Main Author: Hartikka, Antti
Format: Doctoral Thesis
Language:English
Published: Uppsala universitet, Institutionen för biokemi och organisk kemi 2007
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-7905
http://nbn-resolving.de/urn:isbn:978-91-554-6905-4
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spelling ndltd-UPSALLA1-oai-DiVA.org-uu-79052013-01-08T13:04:29ZTowards Rational Design of Asymmetric Catalyst for Organometallic and Organocatalytic ReactionsengHartikka, AnttiUppsala universitet, Institutionen för biokemi och organisk kemiUppsala : Universitetsbiblioteket2007OrganocatalysisTransition Metal ComplexAsymmetricAldol ReactionCyclopropanationDiels-AlderReductionConjugate AdditionOrganic chemistryOrganisk kemiThis thesis deals with synthetically modified chiral molecules and their application in asymmetric catalysis. The first part of the thesis describes the use of commercially available chiral diamine ligands in the iridium catalyzed transfer hydrogenation of aromatic ketones. The chiral diamine ligands were mixed with an appropriate transition-metal complex, which after addition of suitable base provided a chiral transition metal complex capable of reducing a range of different aromatic ketones in high yields and enantioselectivities. The developed methodology constitutes a cost effective and readily available procedure for transfer hydrogenation reactions. The following chapters in the thesis are completely devoted to rational design of small organic molecules acting as catalyst in various organocatalytic transformations. Organocatalytic methodology, represent a new and complementary approach to asymmetric organic synthesis, as compared to e.g. transition metal based methodology. Advantages of this methodology typically include mild and less stringent reaction conditions. This, in combination with the lack of toxic transition metal by-products, makes the process more environmentally benign; the organocatalytic methodology, therefore represent a promising approach towards implementation of green chemistry in organic synthesis. Despite this promise, typical drawbacks of the current methodology are long reaction times and the need for high catalyst loadings. Thus, a large demand exists for enhancing reactivity and increasing selectivity in organocatalytic reactions. The present thesis describes several efforts where we have tried to rationally design improved catalysts for various enantioselective organocata-lytic reactions. First, a structurally modified L-proline, incorporating a 1H-tetrazolic acid, was synthesized and evaluated in the direct asymmetric organocatalytic aldol reaction. As shown in Paper II, the catalyst displayed very high reactivity and subsequent studies were initiated in order to rationalize the reactivity enhancement (Paper III). Delightfully, the design principle of a 1H-tetrazolic acid as replacement for a carboxylic acid has since been widely used in the community, including our own efforts in organocatalytic asymmetric cyclopropanations (Paper V)and Diels-Alder reactions (Paper VII). Novel catalysts, including other functionalizations, were also designed for organocatalytic asymmetric addition of nitroalkanes to α,β-unsaturated aldehydes (Paper IV) and for cyclopropanations (Paper VI). Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-7905urn:isbn:978-91-554-6905-4Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Science and Technology, 1651-6214 ; 313application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Organocatalysis
Transition Metal Complex
Asymmetric
Aldol Reaction
Cyclopropanation
Diels-Alder
Reduction
Conjugate Addition
Organic chemistry
Organisk kemi
spellingShingle Organocatalysis
Transition Metal Complex
Asymmetric
Aldol Reaction
Cyclopropanation
Diels-Alder
Reduction
Conjugate Addition
Organic chemistry
Organisk kemi
Hartikka, Antti
Towards Rational Design of Asymmetric Catalyst for Organometallic and Organocatalytic Reactions
description This thesis deals with synthetically modified chiral molecules and their application in asymmetric catalysis. The first part of the thesis describes the use of commercially available chiral diamine ligands in the iridium catalyzed transfer hydrogenation of aromatic ketones. The chiral diamine ligands were mixed with an appropriate transition-metal complex, which after addition of suitable base provided a chiral transition metal complex capable of reducing a range of different aromatic ketones in high yields and enantioselectivities. The developed methodology constitutes a cost effective and readily available procedure for transfer hydrogenation reactions. The following chapters in the thesis are completely devoted to rational design of small organic molecules acting as catalyst in various organocatalytic transformations. Organocatalytic methodology, represent a new and complementary approach to asymmetric organic synthesis, as compared to e.g. transition metal based methodology. Advantages of this methodology typically include mild and less stringent reaction conditions. This, in combination with the lack of toxic transition metal by-products, makes the process more environmentally benign; the organocatalytic methodology, therefore represent a promising approach towards implementation of green chemistry in organic synthesis. Despite this promise, typical drawbacks of the current methodology are long reaction times and the need for high catalyst loadings. Thus, a large demand exists for enhancing reactivity and increasing selectivity in organocatalytic reactions. The present thesis describes several efforts where we have tried to rationally design improved catalysts for various enantioselective organocata-lytic reactions. First, a structurally modified L-proline, incorporating a 1H-tetrazolic acid, was synthesized and evaluated in the direct asymmetric organocatalytic aldol reaction. As shown in Paper II, the catalyst displayed very high reactivity and subsequent studies were initiated in order to rationalize the reactivity enhancement (Paper III). Delightfully, the design principle of a 1H-tetrazolic acid as replacement for a carboxylic acid has since been widely used in the community, including our own efforts in organocatalytic asymmetric cyclopropanations (Paper V)and Diels-Alder reactions (Paper VII). Novel catalysts, including other functionalizations, were also designed for organocatalytic asymmetric addition of nitroalkanes to α,β-unsaturated aldehydes (Paper IV) and for cyclopropanations (Paper VI).
author Hartikka, Antti
author_facet Hartikka, Antti
author_sort Hartikka, Antti
title Towards Rational Design of Asymmetric Catalyst for Organometallic and Organocatalytic Reactions
title_short Towards Rational Design of Asymmetric Catalyst for Organometallic and Organocatalytic Reactions
title_full Towards Rational Design of Asymmetric Catalyst for Organometallic and Organocatalytic Reactions
title_fullStr Towards Rational Design of Asymmetric Catalyst for Organometallic and Organocatalytic Reactions
title_full_unstemmed Towards Rational Design of Asymmetric Catalyst for Organometallic and Organocatalytic Reactions
title_sort towards rational design of asymmetric catalyst for organometallic and organocatalytic reactions
publisher Uppsala universitet, Institutionen för biokemi och organisk kemi
publishDate 2007
url http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-7905
http://nbn-resolving.de/urn:isbn:978-91-554-6905-4
work_keys_str_mv AT hartikkaantti towardsrationaldesignofasymmetriccatalystfororganometallicandorganocatalyticreactions
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