{"id":{"repo_id":"ubc","oai_identifier":"oai:circle.library.ubc.ca:2429/2202"},"canonical_url":"https://search.dev.ndltd.org/etd/ubc/oai:circle.library.ubc.ca:2429/2202","repository":{"repo_id":"ubc","name":"University of British Columbia","base_url":"http://circle.library.ubc.ca/oai/request"},"display":{"title":"Synthesis and characteristic chemistry of sixteen-electron group 6 hydrocarbyl-containing nitrosyl complexes","abstract":"This thesis addresses the non-generality of the previous method used to prepare CpW(NO)(alkyl)2 complexes from their diiodide precursors. The three most significant problems inherent to the original synthetic method were: (a) the reagents being used (i.e. transition-metal dihalide, alkylating agent and solvent), (b) excessive hydrolysis during workup, and (c) thermal decomposition. This work presents a rationalization for, and utilization of, a new general methodology for the preparation of Cp'M(NO)R2 [Cp' = Cp (i5-05H5), Cp* (i5-05Me5); M = Mo, W; R = alkyl, aryl] complexes. Reactions of Cp*M(NO)C12 with (ary1)2Mg•X(dioxane) [aryl = Ph, p-tolyl, o-tolyl] in THE provide Cp*M(NO)(aryl)2 complexes. These 16-electron diaryl complexes irreversibly form 1:1metal-centered adducts with PMe3. CpW(NO)(o-tolyl)2 is the only isolable diaryl complex of this type that does not incorporate a Cp* ligand. Electrochemical and IR studies indicate that the sediaryl complexes are more potent Lewis acids than their Cp'M(NO)(alkyl)2 congeners. X-raycrystallographic analyses indicate that these diaryl complexes have more sterically accessible metal centers than related dialkyl complexes. The thermal stability of Cp'M (NO)R2 complexes is Cp* >Cp, W > Mo and alkyl > aryl. The relative Lewis acidities of this family of nitrosyl complexes mirrors the thermal stability trend. Reactions of Cp*Mo(NO)C12 with (alky1)2Mg•X(dioxane) [alkyl = CH2CMe3, CH2CMe2Ph,CH2SiMe3] in THE provide previously inaccessible Cp*Mo(NO)(alkyl)C! and Cp*Mo(N0)(alky1)2 complexes in a stepwise fashion. Cp*Mo(NO)(alkyl)Cl species are comparable in Lewis acidity to related Cp*Mo(N0)(ary1)2 complexes. Cp*Mo(NO)(CH2CMe3)Cl reacts with PMe3 and pyridine to afford metal-centered 18-electronadducts while CO and CNCMe3 readily insert into its Mo-neopentyl bond. The chloride ligand inCp*Mo(NO)(CH2CMe3)Cl is easily abstracted by Ag+ in NCMe to form[Cp*Mo(NO)(CH2CMe3)(NCMe)]BF4. The phosphine complex, Cp*Mo(N0)(CH2CMe3)(PMe3)C1, is readily dehydrohalogenated by LDA in THE to afford the novel cyclometallated dialkyl complex (15,111-05Me4CH2)Mo(N0)(CH2CMe3)(PMe3). Reactions of Cp*Mo(NO)R2 complexes with water afford bimetallic complexes of the type,[Cp*Mo(NO)R]2-(11-0), and free hydrocarbon. A kinetic analysis of the reaction between H2Oand Cp*Mo(N0)(CH2SiMe3)2 implicates Cp*Mo(NO)(CH2SiMe3)(OH) as a key intermediate in the formation of [Cp*Mo(N0)(CH2SiMe3)]2-(A-0). Cp'W(NO)(alkyl)2 complexes are hydrolytically stable, whereas Cp'W(NO)(aryl)2 complexes react vigorously with water providing Cp'W(0)2(aryl) complexes. CpMo(NO)(CH2CMe3)2 thermally decomposes via a first-order intramolecular extrusion of neopentane yielding the 16-electron alkylidene complex, CpMo(NO)(=CHCMe3). A mechanistic analysis of the above-mentioned thermal reaction shows little solvent dependence and suggests a highly ordered transition state. CpMo(NO)(=CHCMe3) cannot be isolated, but it can be trapped with phosphines or pyridine (L) yielding CpMo(NO)(=CHCMe3)L complexes. Primary amines and alcohols add their heteroatom-hydrogen bonds across the Mo=C double bond of CpMo(NO)(=CHCMe3) stereoselectively to give alkyl amide and alkyl alkoxide complexes. CpMo(NO)(=CHCMe3) reacts with CpMo(NO)(CH2CMe3)2 to give [CpMo(NO)](12-11 1:112-N0)(A-CHCMe3)[CpMo(=CHCMe3)], which contains the first g-111:12-nitrosyl ligand.","abstract_html":"This thesis addresses the non-generality of the previous method used to prepare CpW(NO)(alkyl)2 complexes from their diiodide precursors. The three most significant problems inherent to the original synthetic method were: (a) the reagents being used (i.e. transition-metal dihalide, alkylating agent and solvent), (b) excessive hydrolysis during workup, and (c) thermal decomposition. This work presents a rationalization for, and utilization of, a new general methodology for the preparation of Cp&#x27;M(NO)R2 [Cp&#x27; = Cp (i5-05H5), Cp* (i5-05Me5); M = Mo, W; R = alkyl, aryl] complexes. Reactions of Cp*M(NO)C12 with (ary1)2Mg•X(dioxane) [aryl = Ph, p-tolyl, o-tolyl] in THE provide Cp*M(NO)(aryl)2 complexes. These 16-electron diaryl complexes irreversibly form 1:1metal-centered adducts with PMe3. CpW(NO)(o-tolyl)2 is the only isolable diaryl complex of this type that does not incorporate a Cp* ligand. Electrochemical and IR studies indicate that the sediaryl complexes are more potent Lewis acids than their Cp&#x27;M(NO)(alkyl)2 congeners. X-raycrystallographic analyses indicate that these diaryl complexes have more sterically accessible metal centers than related dialkyl complexes. The thermal stability of Cp&#x27;M (NO)R2 complexes is Cp* &gt;Cp, W &gt; Mo and alkyl &gt; aryl. The relative Lewis acidities of this family of nitrosyl complexes mirrors the thermal stability trend. Reactions of Cp*Mo(NO)C12 with (alky1)2Mg•X(dioxane) [alkyl = CH2CMe3, CH2CMe2Ph,CH2SiMe3] in THE provide previously inaccessible Cp*Mo(NO)(alkyl)C! and Cp*Mo(N0)(alky1)2 complexes in a stepwise fashion. Cp*Mo(NO)(alkyl)Cl species are comparable in Lewis acidity to related Cp*Mo(N0)(ary1)2 complexes. Cp*Mo(NO)(CH2CMe3)Cl reacts with PMe3 and pyridine to afford metal-centered 18-electronadducts while CO and CNCMe3 readily insert into its Mo-neopentyl bond. The chloride ligand inCp*Mo(NO)(CH2CMe3)Cl is easily abstracted by Ag+ in NCMe to form[Cp*Mo(NO)(CH2CMe3)(NCMe)]BF4. The phosphine complex, Cp*Mo(N0)(CH2CMe3)(PMe3)C1, is readily dehydrohalogenated by LDA in THE to afford the novel cyclometallated dialkyl complex (15,111-05Me4CH2)Mo(N0)(CH2CMe3)(PMe3). Reactions of Cp*Mo(NO)R2 complexes with water afford bimetallic complexes of the type,[Cp*Mo(NO)R]2-(11-0), and free hydrocarbon. A kinetic analysis of the reaction between H2Oand Cp*Mo(N0)(CH2SiMe3)2 implicates Cp*Mo(NO)(CH2SiMe3)(OH) as a key intermediate in the formation of [Cp*Mo(N0)(CH2SiMe3)]2-(A-0). Cp&#x27;W(NO)(alkyl)2 complexes are hydrolytically stable, whereas Cp&#x27;W(NO)(aryl)2 complexes react vigorously with water providing Cp&#x27;W(0)2(aryl) complexes. CpMo(NO)(CH2CMe3)2 thermally decomposes via a first-order intramolecular extrusion of neopentane yielding the 16-electron alkylidene complex, CpMo(NO)(=CHCMe3). A mechanistic analysis of the above-mentioned thermal reaction shows little solvent dependence and suggests a highly ordered transition state. CpMo(NO)(=CHCMe3) cannot be isolated, but it can be trapped with phosphines or pyridine (L) yielding CpMo(NO)(=CHCMe3)L complexes. Primary amines and alcohols add their heteroatom-hydrogen bonds across the Mo=C double bond of CpMo(NO)(=CHCMe3) stereoselectively to give alkyl amide and alkyl alkoxide complexes. CpMo(NO)(=CHCMe3) reacts with CpMo(NO)(CH2CMe3)2 to give [CpMo(NO)](12-11 1:112-N0)(A-CHCMe3)[CpMo(=CHCMe3)], which contains the first g-111:12-nitrosyl ligand.","abstract_has_math":false,"creators":["Veltheer, John E."],"institution":"University of British Columbia","degree_name":"Doctor of Philosophy - PhD","degree_level":"doctoral","degree_discipline":"Chemistry","degree_department":null,"school":null,"contributors":[],"advisors":[],"committee_chairs":[],"committee_members":[],"year":1993,"date_issued":"1993","date_published":"1993","updated_at":"2026-07-24T05:07:28Z","subjects":[],"languages":["eng"],"rights":["For non-commercial purposes only, such as research, private study and education. Additional conditions apply, see Terms of Use https://open.library.ubc.ca/terms_of_use."],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"http://hdl.handle.net/2429/2202","outbound_label":"Handle","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:creator","label":"Author","values":["Veltheer, John E."]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["1993"]},{"key":"dc:publisher","label":"Institution","values":["University of British Columbia"]},{"key":"dc:type","label":"Dc Type","values":["Text"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Chemistry"]},{"key":"thesis:degree_level","label":"Degree Level","values":["doctoral"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Doctor of Philosophy - PhD"]},{"key":"thesis:institution_name","label":"Thesis Institution Name","values":["University of British Columbia"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["eng"]},{"key":"dc:rights","label":"Dc Rights","values":["For non-commercial purposes only, such as research, private study and education. Additional conditions apply, see Terms of Use https://open.library.ubc.ca/terms_of_use."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["http://hdl.handle.net/2429/2202","http://circle.library.ubc.ca/bitstream/2429/2202/1/ubc_1993_spring_phd_veltheer_john.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description","label":"Description","values":["This thesis addresses the non-generality of the previous method used to prepare CpW(NO)(alkyl)2 complexes from their diiodide precursors. The three most significant problems inherent to the original synthetic method were: (a) the reagents being used (i.e. transition-metal dihalide, alkylating agent and solvent), (b) excessive hydrolysis during workup, and (c) thermal decomposition. This work presents a rationalization for, and utilization of, a new general methodology for the preparation of Cp'M(NO)R2 [Cp' = Cp (i5-05H5), Cp* (i5-05Me5); M = Mo, W; R = alkyl, aryl] complexes. Reactions of Cp*M(NO)C12 with (ary1)2Mg•X(dioxane) [aryl = Ph, p-tolyl, o-tolyl] in THE provide Cp*M(NO)(aryl)2 complexes. These 16-electron diaryl complexes irreversibly form 1:1metal-centered adducts with PMe3. CpW(NO)(o-tolyl)2 is the only isolable diaryl complex of this type that does not incorporate a Cp* ligand. Electrochemical and IR studies indicate that the sediaryl complexes are more potent Lewis acids than their Cp'M(NO)(alkyl)2 congeners. X-raycrystallographic analyses indicate that these diaryl complexes have more sterically accessible metal centers than related dialkyl complexes. The thermal stability of Cp'M (NO)R2 complexes is Cp* >Cp, W > Mo and alkyl > aryl. The relative Lewis acidities of this family of nitrosyl complexes mirrors the thermal stability trend. Reactions of Cp*Mo(NO)C12 with (alky1)2Mg•X(dioxane) [alkyl = CH2CMe3, CH2CMe2Ph,CH2SiMe3] in THE provide previously inaccessible Cp*Mo(NO)(alkyl)C! and Cp*Mo(N0)(alky1)2 complexes in a stepwise fashion. Cp*Mo(NO)(alkyl)Cl species are comparable in Lewis acidity to related Cp*Mo(N0)(ary1)2 complexes. Cp*Mo(NO)(CH2CMe3)Cl reacts with PMe3 and pyridine to afford metal-centered 18-electronadducts while CO and CNCMe3 readily insert into its Mo-neopentyl bond. The chloride ligand inCp*Mo(NO)(CH2CMe3)Cl is easily abstracted by Ag+ in NCMe to form[Cp*Mo(NO)(CH2CMe3)(NCMe)]BF4. The phosphine complex, Cp*Mo(N0)(CH2CMe3)(PMe3)C1, is readily dehydrohalogenated by LDA in THE to afford the novel cyclometallated dialkyl complex (15,111-05Me4CH2)Mo(N0)(CH2CMe3)(PMe3). Reactions of Cp*Mo(NO)R2 complexes with water afford bimetallic complexes of the type,[Cp*Mo(NO)R]2-(11-0), and free hydrocarbon. A kinetic analysis of the reaction between H2Oand Cp*Mo(N0)(CH2SiMe3)2 implicates Cp*Mo(NO)(CH2SiMe3)(OH) as a key intermediate in the formation of [Cp*Mo(N0)(CH2SiMe3)]2-(A-0). Cp'W(NO)(alkyl)2 complexes are hydrolytically stable, whereas Cp'W(NO)(aryl)2 complexes react vigorously with water providing Cp'W(0)2(aryl) complexes. CpMo(NO)(CH2CMe3)2 thermally decomposes via a first-order intramolecular extrusion of neopentane yielding the 16-electron alkylidene complex, CpMo(NO)(=CHCMe3). A mechanistic analysis of the above-mentioned thermal reaction shows little solvent dependence and suggests a highly ordered transition state. CpMo(NO)(=CHCMe3) cannot be isolated, but it can be trapped with phosphines or pyridine (L) yielding CpMo(NO)(=CHCMe3)L complexes. Primary amines and alcohols add their heteroatom-hydrogen bonds across the Mo=C double bond of CpMo(NO)(=CHCMe3) stereoselectively to give alkyl amide and alkyl alkoxide complexes. CpMo(NO)(=CHCMe3) reacts with CpMo(NO)(CH2CMe3)2 to give [CpMo(NO)](12-11 1:112-N0)(A-CHCMe3)[CpMo(=CHCMe3)], which contains the first g-111:12-nitrosyl ligand."]},{"key":"dc:format","label":"Dc Format","values":["7939121","application/pdf"]},{"key":"dc:title","label":"Title","values":["Synthesis and characteristic chemistry of sixteen-electron group 6 hydrocarbyl-containing nitrosyl complexes"]}]}],"canonical_facts":{"dc:creator":["Veltheer, John E."],"dc:date":["1993"],"dc:description":["This thesis addresses the non-generality of the previous method used to prepare CpW(NO)(alkyl)2 complexes from their diiodide precursors. The three most significant problems inherent to the original synthetic method were: (a) the reagents being used (i.e. transition-metal dihalide, alkylating agent and solvent), (b) excessive hydrolysis during workup, and (c) thermal decomposition. This work presents a rationalization for, and utilization of, a new general methodology for the preparation of Cp'M(NO)R2 [Cp' = Cp (i5-05H5), Cp* (i5-05Me5); M = Mo, W; R = alkyl, aryl] complexes. Reactions of Cp*M(NO)C12 with (ary1)2Mg•X(dioxane) [aryl = Ph, p-tolyl, o-tolyl] in THE provide Cp*M(NO)(aryl)2 complexes. These 16-electron diaryl complexes irreversibly form 1:1metal-centered adducts with PMe3. CpW(NO)(o-tolyl)2 is the only isolable diaryl complex of this type that does not incorporate a Cp* ligand. Electrochemical and IR studies indicate that the sediaryl complexes are more potent Lewis acids than their Cp'M(NO)(alkyl)2 congeners. X-raycrystallographic analyses indicate that these diaryl complexes have more sterically accessible metal centers than related dialkyl complexes. The thermal stability of Cp'M (NO)R2 complexes is Cp* >Cp, W > Mo and alkyl > aryl. The relative Lewis acidities of this family of nitrosyl complexes mirrors the thermal stability trend. Reactions of Cp*Mo(NO)C12 with (alky1)2Mg•X(dioxane) [alkyl = CH2CMe3, CH2CMe2Ph,CH2SiMe3] in THE provide previously inaccessible Cp*Mo(NO)(alkyl)C! and Cp*Mo(N0)(alky1)2 complexes in a stepwise fashion. Cp*Mo(NO)(alkyl)Cl species are comparable in Lewis acidity to related Cp*Mo(N0)(ary1)2 complexes. Cp*Mo(NO)(CH2CMe3)Cl reacts with PMe3 and pyridine to afford metal-centered 18-electronadducts while CO and CNCMe3 readily insert into its Mo-neopentyl bond. The chloride ligand inCp*Mo(NO)(CH2CMe3)Cl is easily abstracted by Ag+ in NCMe to form[Cp*Mo(NO)(CH2CMe3)(NCMe)]BF4. The phosphine complex, Cp*Mo(N0)(CH2CMe3)(PMe3)C1, is readily dehydrohalogenated by LDA in THE to afford the novel cyclometallated dialkyl complex (15,111-05Me4CH2)Mo(N0)(CH2CMe3)(PMe3). Reactions of Cp*Mo(NO)R2 complexes with water afford bimetallic complexes of the type,[Cp*Mo(NO)R]2-(11-0), and free hydrocarbon. A kinetic analysis of the reaction between H2Oand Cp*Mo(N0)(CH2SiMe3)2 implicates Cp*Mo(NO)(CH2SiMe3)(OH) as a key intermediate in the formation of [Cp*Mo(N0)(CH2SiMe3)]2-(A-0). Cp'W(NO)(alkyl)2 complexes are hydrolytically stable, whereas Cp'W(NO)(aryl)2 complexes react vigorously with water providing Cp'W(0)2(aryl) complexes. CpMo(NO)(CH2CMe3)2 thermally decomposes via a first-order intramolecular extrusion of neopentane yielding the 16-electron alkylidene complex, CpMo(NO)(=CHCMe3). A mechanistic analysis of the above-mentioned thermal reaction shows little solvent dependence and suggests a highly ordered transition state. CpMo(NO)(=CHCMe3) cannot be isolated, but it can be trapped with phosphines or pyridine (L) yielding CpMo(NO)(=CHCMe3)L complexes. Primary amines and alcohols add their heteroatom-hydrogen bonds across the Mo=C double bond of CpMo(NO)(=CHCMe3) stereoselectively to give alkyl amide and alkyl alkoxide complexes. CpMo(NO)(=CHCMe3) reacts with CpMo(NO)(CH2CMe3)2 to give [CpMo(NO)](12-11 1:112-N0)(A-CHCMe3)[CpMo(=CHCMe3)], which contains the first g-111:12-nitrosyl ligand."],"dc:format":["7939121","application/pdf"],"dc:identifier":["http://hdl.handle.net/2429/2202","http://circle.library.ubc.ca/bitstream/2429/2202/1/ubc_1993_spring_phd_veltheer_john.pdf"],"dc:language":["eng"],"dc:publisher":["University of British Columbia"],"dc:rights":["For non-commercial purposes only, such as research, private study and education. Additional conditions apply, see Terms of Use https://open.library.ubc.ca/terms_of_use."],"dc:title":["Synthesis and characteristic chemistry of sixteen-electron group 6 hydrocarbyl-containing nitrosyl complexes"],"dc:type":["Text"],"thesis:degree_discipline":["Chemistry"],"thesis:degree_level":["doctoral"],"thesis:degree_name":["Doctor of Philosophy - PhD"],"thesis:institution_name":["University of British Columbia"]},"updated_at":"2026-07-24T05:07:28Z"}