{"id":{"repo_id":"duke","oai_identifier":"oai:dukespace.lib.duke.edu:10161/8070"},"canonical_url":"https://search.dev.ndltd.org/etd/duke/oai:dukespace.lib.duke.edu:10161/8070","repository":{"repo_id":"duke","name":"Duke University","base_url":"https://dukespace.lib.duke.edu/server/oai/request"},"display":{"title":"Mechanistic Studies of pi-Activation Catalysis by Cationic Gold(I) and Brønsted-acid","abstract":"<p>Soluble gold(I) complexes are highly efficient catalysts for the functionalization of C-C multiple bonds through the addition of carbon- or heteroatom-nucleophiles across &pi;-bonds or cycloisomerizations of enynes and related &pi;-systems. Mechanisms involving outer-sphere attack of a nucleophile on the electrophilic &pi;-ligand of a cationic gold &pi;-complex are typically invoked for gold(I)-catalyzed hydrofunctionalization and cycloisomerization processes, but direct experimental evidence for this mechanism is limited. </p><p>As an extension of the pioneering research in the Widenhoefer lab on the synthesis and characterization of gold(I) &pi;-complexes, a diverse family of 15 gold(I) &pi;-complexes in three distinct series are reported herein. First, the synthesis, characterization, and solution behavior of a series of seven gold(I) &pi;-diene complexes is reported. In each case, gold binds preferentially to the less substituted C&#9552;C bond of the diene, but intermolecular exchange of the complexed and uncomplexed C&#9552;C is facile. The gold-alkene interaction is stabilized via substitution-dependant donation of electron density from the uncomplexed C&#9552;C bond to the complexed C&#9552;C bond of the diene.</p><p>In addition, a pair of axially chiral dicationic, bis(gold) &pi;-alkene complexes that contain a 2,2&#8242;-bis(phosphino)biphenyl ligand are reported. The complexes show no intramolecular Au-Au interactions or facial selectivity for complexation, but solution analyses suggest that the environment about one gold center affects the behavior of the proximal gold center through a yet unknown mechanism. Gold(I) &pi;-alkene, alkyne, diene, and allene complexes that bear a triphenylphosphine supporting ligand have also been synthesized and characterized in situ. The &pi;-ligands in the triphenylphosphine gold complexes were considerably more labile than those bearing bulky, electron rich phosphine or N-heterocyclic carbene ligands, and the complexes decomposed in solution above -20 °C.</p><p>Mechanistic investigation of the gold-catalyzed cycloisomerization of a 7-aryl-1,6-enyne led to characterization of the first organometallic complex directly observed in the course of an enyne cycloisomerization. The complex is best described as a gold &pi;-(bicyclo[3.2.0]heptane) complex with a domination metallacyclopropane binding interaction and undergoes an acid-catalyzed rearrangement to yield a stable bicyclo[3.2.0]heptane product which can further isomerize in the presence of Ag+. In a further effort to understand the reactive species in catalytic cycloisomerizations, the first example of a gold cyclopropyl carbene was synthesized and fully characterized. </p><p>Finally, in an effort understand the mechanistic distinctions between electrophilic metal-catalyzed hydrofunctionalization and similar Brønsted acid-catalyzed additions, the kinetics and stereochemistry of intramolucar acid-catalyzed hydrofunctionalizion were studied. In all cases, the transformations were > 95 % selective for <italic>anti</italic>-addition and displayed rate laws similar to those expected for metal-catalyzed variants. A concerted C-H, C-X bond forming mechanism for addition is proposed.</p>","abstract_html":"&lt;p&gt;Soluble gold(I) complexes are highly efficient catalysts for the functionalization of C-C multiple bonds through the addition of carbon- or heteroatom-nucleophiles across &amp;pi;-bonds or cycloisomerizations of enynes and related &amp;pi;-systems. Mechanisms involving outer-sphere attack of a nucleophile on the electrophilic &amp;pi;-ligand of a cationic gold &amp;pi;-complex are typically invoked for gold(I)-catalyzed hydrofunctionalization and cycloisomerization processes, but direct experimental evidence for this mechanism is limited. &lt;/p&gt;&lt;p&gt;As an extension of the pioneering research in the Widenhoefer lab on the synthesis and characterization of gold(I) &amp;pi;-complexes, a diverse family of 15 gold(I) &amp;pi;-complexes in three distinct series are reported herein. First, the synthesis, characterization, and solution behavior of a series of seven gold(I) &amp;pi;-diene complexes is reported. In each case, gold binds preferentially to the less substituted C&amp;#9552;C bond of the diene, but intermolecular exchange of the complexed and uncomplexed C&amp;#9552;C is facile. The gold-alkene interaction is stabilized via substitution-dependant donation of electron density from the uncomplexed C&amp;#9552;C bond to the complexed C&amp;#9552;C bond of the diene.&lt;/p&gt;&lt;p&gt;In addition, a pair of axially chiral dicationic, bis(gold) &amp;pi;-alkene complexes that contain a 2,2&amp;#8242;-bis(phosphino)biphenyl ligand are reported. The complexes show no intramolecular Au-Au interactions or facial selectivity for complexation, but solution analyses suggest that the environment about one gold center affects the behavior of the proximal gold center through a yet unknown mechanism. Gold(I) &amp;pi;-alkene, alkyne, diene, and allene complexes that bear a triphenylphosphine supporting ligand have also been synthesized and characterized in situ. The &amp;pi;-ligands in the triphenylphosphine gold complexes were considerably more labile than those bearing bulky, electron rich phosphine or N-heterocyclic carbene ligands, and the complexes decomposed in solution above -20 °C.&lt;/p&gt;&lt;p&gt;Mechanistic investigation of the gold-catalyzed cycloisomerization of a 7-aryl-1,6-enyne led to characterization of the first organometallic complex directly observed in the course of an enyne cycloisomerization. The complex is best described as a gold &amp;pi;-(bicyclo[3.2.0]heptane) complex with a domination metallacyclopropane binding interaction and undergoes an acid-catalyzed rearrangement to yield a stable bicyclo[3.2.0]heptane product which can further isomerize in the presence of Ag+. In a further effort to understand the reactive species in catalytic cycloisomerizations, the first example of a gold cyclopropyl carbene was synthesized and fully characterized. &lt;/p&gt;&lt;p&gt;Finally, in an effort understand the mechanistic distinctions between electrophilic metal-catalyzed hydrofunctionalization and similar Brønsted acid-catalyzed additions, the kinetics and stereochemistry of intramolucar acid-catalyzed hydrofunctionalizion were studied. In all cases, the transformations were &gt; 95 % selective for &lt;italic&gt;anti&lt;/italic&gt;-addition and displayed rate laws similar to those expected for metal-catalyzed variants. A concerted C-H, C-X bond forming mechanism for addition is proposed.&lt;/p&gt;","abstract_has_math":false,"creators":["Brooner, Rachel"],"institution":null,"degree_name":null,"degree_level":null,"degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Widenhoefer, Ross A"],"committee_chairs":[],"committee_members":[],"year":2013,"date_issued":"2013","date_published":"2013","updated_at":"2026-07-24T02:06:59Z","subjects":["Chemistry","Organic chemistry"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://hdl.handle.net/10161/8070","outbound_label":"Handle","outbound_source":"dc:identifier.uri"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Widenhoefer, Ross A"]},{"key":"dc:creator","label":"Author","values":["Brooner, Rachel"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.accessioned","label":"Dc Date Accessioned","values":["2013-11-14T19:15:05Z"]},{"key":"dc:date.available","label":"Dc Date Available","values":["2015-11-04T05:30:05Z"]},{"key":"dc:date.issued","label":"Date","values":["2013"]},{"key":"dc:type","label":"Dc Type","values":["Dissertation"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Chemistry","Organic chemistry"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://hdl.handle.net/10161/8070"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>Soluble gold(I) complexes are highly efficient catalysts for the functionalization of C-C multiple bonds through the addition of carbon- or heteroatom-nucleophiles across &pi;-bonds or cycloisomerizations of enynes and related &pi;-systems. Mechanisms involving outer-sphere attack of a nucleophile on the electrophilic &pi;-ligand of a cationic gold &pi;-complex are typically invoked for gold(I)-catalyzed hydrofunctionalization and cycloisomerization processes, but direct experimental evidence for this mechanism is limited. </p><p>As an extension of the pioneering research in the Widenhoefer lab on the synthesis and characterization of gold(I) &pi;-complexes, a diverse family of 15 gold(I) &pi;-complexes in three distinct series are reported herein. First, the synthesis, characterization, and solution behavior of a series of seven gold(I) &pi;-diene complexes is reported. In each case, gold binds preferentially to the less substituted C&#9552;C bond of the diene, but intermolecular exchange of the complexed and uncomplexed C&#9552;C is facile. The gold-alkene interaction is stabilized via substitution-dependant donation of electron density from the uncomplexed C&#9552;C bond to the complexed C&#9552;C bond of the diene.</p><p>In addition, a pair of axially chiral dicationic, bis(gold) &pi;-alkene complexes that contain a 2,2&#8242;-bis(phosphino)biphenyl ligand are reported. The complexes show no intramolecular Au-Au interactions or facial selectivity for complexation, but solution analyses suggest that the environment about one gold center affects the behavior of the proximal gold center through a yet unknown mechanism. Gold(I) &pi;-alkene, alkyne, diene, and allene complexes that bear a triphenylphosphine supporting ligand have also been synthesized and characterized in situ. The &pi;-ligands in the triphenylphosphine gold complexes were considerably more labile than those bearing bulky, electron rich phosphine or N-heterocyclic carbene ligands, and the complexes decomposed in solution above -20 °C.</p><p>Mechanistic investigation of the gold-catalyzed cycloisomerization of a 7-aryl-1,6-enyne led to characterization of the first organometallic complex directly observed in the course of an enyne cycloisomerization. The complex is best described as a gold &pi;-(bicyclo[3.2.0]heptane) complex with a domination metallacyclopropane binding interaction and undergoes an acid-catalyzed rearrangement to yield a stable bicyclo[3.2.0]heptane product which can further isomerize in the presence of Ag+. In a further effort to understand the reactive species in catalytic cycloisomerizations, the first example of a gold cyclopropyl carbene was synthesized and fully characterized. </p><p>Finally, in an effort understand the mechanistic distinctions between electrophilic metal-catalyzed hydrofunctionalization and similar Brønsted acid-catalyzed additions, the kinetics and stereochemistry of intramolucar acid-catalyzed hydrofunctionalizion were studied. In all cases, the transformations were > 95 % selective for <italic>anti</italic>-addition and displayed rate laws similar to those expected for metal-catalyzed variants. A concerted C-H, C-X bond forming mechanism for addition is proposed.</p>"]},{"key":"dc:title","label":"Title","values":["Mechanistic Studies of pi-Activation Catalysis by Cationic Gold(I) and Brønsted-acid"]}]}],"canonical_facts":{"dc:contributor.advisor":["Widenhoefer, Ross A"],"dc:creator":["Brooner, Rachel"],"dc:date.accessioned":["2013-11-14T19:15:05Z"],"dc:date.available":["2015-11-04T05:30:05Z"],"dc:date.issued":["2013"],"dc:description.abstract":["<p>Soluble gold(I) complexes are highly efficient catalysts for the functionalization of C-C multiple bonds through the addition of carbon- or heteroatom-nucleophiles across &pi;-bonds or cycloisomerizations of enynes and related &pi;-systems. Mechanisms involving outer-sphere attack of a nucleophile on the electrophilic &pi;-ligand of a cationic gold &pi;-complex are typically invoked for gold(I)-catalyzed hydrofunctionalization and cycloisomerization processes, but direct experimental evidence for this mechanism is limited. </p><p>As an extension of the pioneering research in the Widenhoefer lab on the synthesis and characterization of gold(I) &pi;-complexes, a diverse family of 15 gold(I) &pi;-complexes in three distinct series are reported herein. First, the synthesis, characterization, and solution behavior of a series of seven gold(I) &pi;-diene complexes is reported. In each case, gold binds preferentially to the less substituted C&#9552;C bond of the diene, but intermolecular exchange of the complexed and uncomplexed C&#9552;C is facile. The gold-alkene interaction is stabilized via substitution-dependant donation of electron density from the uncomplexed C&#9552;C bond to the complexed C&#9552;C bond of the diene.</p><p>In addition, a pair of axially chiral dicationic, bis(gold) &pi;-alkene complexes that contain a 2,2&#8242;-bis(phosphino)biphenyl ligand are reported. The complexes show no intramolecular Au-Au interactions or facial selectivity for complexation, but solution analyses suggest that the environment about one gold center affects the behavior of the proximal gold center through a yet unknown mechanism. Gold(I) &pi;-alkene, alkyne, diene, and allene complexes that bear a triphenylphosphine supporting ligand have also been synthesized and characterized in situ. The &pi;-ligands in the triphenylphosphine gold complexes were considerably more labile than those bearing bulky, electron rich phosphine or N-heterocyclic carbene ligands, and the complexes decomposed in solution above -20 °C.</p><p>Mechanistic investigation of the gold-catalyzed cycloisomerization of a 7-aryl-1,6-enyne led to characterization of the first organometallic complex directly observed in the course of an enyne cycloisomerization. The complex is best described as a gold &pi;-(bicyclo[3.2.0]heptane) complex with a domination metallacyclopropane binding interaction and undergoes an acid-catalyzed rearrangement to yield a stable bicyclo[3.2.0]heptane product which can further isomerize in the presence of Ag+. In a further effort to understand the reactive species in catalytic cycloisomerizations, the first example of a gold cyclopropyl carbene was synthesized and fully characterized. </p><p>Finally, in an effort understand the mechanistic distinctions between electrophilic metal-catalyzed hydrofunctionalization and similar Brønsted acid-catalyzed additions, the kinetics and stereochemistry of intramolucar acid-catalyzed hydrofunctionalizion were studied. In all cases, the transformations were > 95 % selective for <italic>anti</italic>-addition and displayed rate laws similar to those expected for metal-catalyzed variants. A concerted C-H, C-X bond forming mechanism for addition is proposed.</p>"],"dc:identifier.uri":["https://hdl.handle.net/10161/8070"],"dc:subject":["Chemistry","Organic chemistry"],"dc:title":["Mechanistic Studies of pi-Activation Catalysis by Cationic Gold(I) and Brønsted-acid"],"dc:type":["Dissertation"]},"updated_at":"2026-07-24T02:06:59Z"}