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1.
2.
The alkenylaminoallenylidene complex [Ru(η5-C9H7){CCC(NEt2)[C(Me)CPh2]}{κ(P)-Ph2PCH2CHCH2}(PPh3)][PF6] (2) has been prepared by the reaction of the allenylidene [Ru(η5-C9H7)(CCCPh2){κ(P)-Ph2PCH2CHCH2}(PPh3)][PF6] (1) with the ynamine MeCCNEt2. The reaction proceeds regio- and stereoselectively, and the insertion of the ynamine takes place exclusively at the CβCγ bond of the unsaturated chain. The secondary allenylidene [Ru(η5-C9H7){CCC(H)[C(Me)CPh2]}{κ(P)-Ph2PCH2CHCH2}(PPh3)][PF6] (3) is obtained, in a one-pot synthesis, from the reaction of aminoallenylidene 2 with LiBHEt3 and subsequent treatment with silica. Moreover, the addition of an excess of NaBH4 to a solution of the complex 2 in THF at room temperature gives exclusively the alkynyl complex [Ru(η5-C9H7){CCCH2[C(Me)CPh2]}{κ(P)-Ph2PCH2CHCH2}(PPh3)] (5). The heating of a solution of allenylidene derivative 3 in THF at reflux gives regio- and diastereoselectively the cyclobutylidene complex [Ru(η5-C9H7) (PPh3)][PF6](4) through an intramolecular cycloaddition of the CC allyl and the CαCβ bonds in the allenylidene complex 3. The structure of complex 4 has been determined by single crystal X-ray diffraction analysis.  相似文献   

3.
The addition of phosphines to the manganese allenylidene complexes Cp(CO)2MnCCC(Ph)R (R = H, Ph) proceeds selectively at the Cα atom to result in the α-phosphonioallenyl complexes Cp(CO)2Mn-C(+PR31)CC(Ph)R. The protonation of the latter affords the η2-(1,2)-phosphonioallenes Cp(CO)2Mn{η2-(1,2)-HC(+PR31)CC(Ph)R}, rather than the phosphoniovinylcarbenes Cp(CO)2MnC(+PR31)-HCC(Ph)R. All complexes obtained are stereochemically rigid and do not isomerize into the η2-(2,3)-phosphonioallene isomers.  相似文献   

4.
The Perkow reaction of triethyl phosphite and β-alkoxyvinyl trihalogenomethyl ketones, which have common acyclic or cyclic structural fragment: -O-CC-C(O)CX2Cl, yielded dienyl phosphates: -O-CC-C[OP(O)(OEt)2]CX2 where X = F or Cl, whereas γ-bromo-β-methoxy-α,β-unsaturated trifluoromethyl ketone CF3C(O)CHC(OMe)CH2Br gave diene CF3C[OP(O)(OEt)2]CH-C(OMe)CH2.  相似文献   

5.
The oxidation of the Pt(IV) tetramethyl complex [ArNCHCHNAr]PtMe4 (Ar = 2,6-Me2C6H3) has been investigated in acetonitrile and dichloromethane. Cyclic voltammetry demonstrates that the irreversible oxidation of [ArNCHCHNAr]PtMe4 occurs at a slightly less positive oxidation potential than the irreversible oxidation of the analogous Pt(II) species [ArNCHCHNAr]PtMe2. The product distribution arising from the oxidation depends strongly on the reaction conditions and includes cationic Pt(IV) species (acetonitrile, dichloromethane solvents) and Pt(II) species (dichloromethane only). Evidence is presented that suggests that homolytic cleavage of a weakened PtC bond in is involved in the oxidatively induced reactions.  相似文献   

6.
Copper-catalyzed reaction of [Cp(PPh3)NiCl] with the terminal alkynes H-CC-C(O)R (R = O-Menthyl, NMe2, Ph) yields the alkynyl complexes [Cp(PPh3)Ni-CC-C(O)R]. Subsequent O-methylation with either [Me3O]BF4 or MeSO3CF3 affords cationic allenylidene complexes, [Cp(PPh3)NiCCC(OMe)R]+X¯ (X = BF4, SO3CF3). N-Alkylation of Cp(PPh3)Ni-pyridylethynyl complexes likewise gives cationic allenylidene complexes. [Cp(PPh3)Ni-CC-C(CH)4N] adds BF3 at nitrogen. Modification of the ligand sphere in these nickel allenylidene complexes is possible by replacing PPh3 by PMe3 in the alkynyl complex precursors. The first allenylidene(carbene)nickel cation, [Cp(SIMes)NCCC(OMe)NMe2]+, is accessible by successive reaction of [Cp(SIMes)NiCl] with H-CC-C(O)NMe2 and [Me3O]BF4. By the analogous sequence an allenylidene complex containing the chelating (diphenylphosphanyl)ethylcyclopentadienyl ligand can be prepared. DFT Calculations were carried out on the allenylidene complex cation [Cp(PPh3)NiCCC(OMe)NMe2]+ and on its precursor, the alkynyl complex [Cp(PPh3)Ni-CC-C(O)NMe2]. Based on the spectroscopic data and a X-ray structure analysis the bonding in the new nickel allenylidene complexes is best represented by several resonance forms, an alkynyl resonance form considerably contributing to the overall bond.  相似文献   

7.
Dechlorofluorination of ArSb(F)-C(Cl)CR2 (CR2 = fluorenylidene, Ar = 2,4,6-tri-tert-butylphenyl) by tert-butyllithium afforded a 3,4-bis(fluorenylidene)-1,2-distibacyclobutane. The formation of the latter probably involves the transient stibaallene ArSbCCR2 followed by a head-to-head dimerization via two SbC double bonds. Molecular orbital calculations at the ab initio and DFT levels support the head-to-head dimerization of ArSbCCR2 with the formation of a 1,2-distibacyclobutane.  相似文献   

8.
A versatile synthetic route to conjugated bimetallic ruthenium complexes with σ,σ-bridging azobenzene chains was developed, and new ruthenium complexes with various ligands were synthesized and characterized. These bimetallic complexes showed a remarkable absorption in the visible region (λmax: 452-483 nm), and undergo trans-to-cis isomerization under UV light irradiation for short time. Electrochemical study showed that the metal centers in bimetallic complexes containing the CHCHC6H4NNC6H4CHCH bridge interact with each other.  相似文献   

9.
Chlorotrifluoroethene is converted in situ to [F2CCFSiMe3]. The crude [F2CCFSiMe3] solution is reduced with lithium aluminum hydride to (HFCCFSiMe3), which (without isolation) is converted to (Z)-HFCCFSnBu3. Subsequent metallation and trapping of the vinyllithium reagent with Bu3SnCl gives (E)-Bu3SnCFCFSnBu3 in 73% overall yield. Only two isolation steps are required and the use of Me3SiCl and F2CCFCl provides a cheap, economical route to this useful synthon.  相似文献   

10.
Dialkenyl-substituted 1,1-bis(silyl)ethenes of the general formulae (CH2CH(CH2)nMe2Si)2CCH2 and (CH2CH(CH2)nOMe2Si)2CCH2, (where n = 1-3) have been successfully converted into new silacyclic or silamacrocyclic compounds in the presence of ruthenium-benzylidene complex (first generation Grubbs catalyst). The structures of both macrocyclic silaolefins have been confirmed using X-ray diffraction.  相似文献   

11.
Pentacarbonyl dimethylamino(methoxy)allenylidene tungsten, [(CO)5WCCC(OMe)NMe2] (1b), reacts with one equivalent of primary amines, H2NR, by selectively replacing the methoxy group to give dimethylamino(amino)allenylidene complexes, [(CO)5WCCC(NHR)NMe2]. When the amine is used in excess both terminal groups, OMe as well as NMe2, are replaced by the primary amino group giving [(CO)5WCCC(NHR)2 ]. The NHR substituent in these complexes may be modified by deprotonation with LDA followed by alkylation. The replacement of the methoxy group in 1b by a secondary amino group, NR2, can be achieved by a stepwise process. Addition of Li[NR2] to the Cγ atom of 1b affords an alkynyl tungstate. Subsequent OMe elimination induced by TMS-Cl/SiO2 yields the allenylidene complexes [(CO)5WCCC(NR2)NMe2]. When bidentate diamines are used instead of monoamines both substituents, OMe and NMe2, are replaced and allenylidene complexes are formed in which Cγ constitutes part of a 5-, 6-, or 7-membered heterocycle. The reaction of [(CO)5CrCCC(OMe)NMe2] (1a) with diethylene triamine affords an allenylidene complex with a heterocyclic endgroup carrying a dangling CH2CH2NH2 substituent. All reactions follow a strict regioselective attack of the nucleophile at Cγ and proceed with good to excellent yields. The addition of N-H to the CαCβ bond is not observed. By applying either one of these routes nearly any substitution pattern in bis(amino)allenylidene complex can be realized.  相似文献   

12.
Oxidative addition reactions of Cl2CPR (R = 2,4,6-tris(trifluoromethyl)phenyl (Ar) or 2,6-bis(trifluoromethyl)phenyl (Ar′) with Pt(PPh3)4 yield the cis and trans (at platinum) complexes [PtCl(ClCPAr)(PPh3)2] and [PtCl(ClCPAr′)(PPh3)2]. All starting materials and intermediates have been characterised by NMR spectroscopy. The crystal and molecular structures of the trans-platinum complexes have been determined by single-crystal X-ray diffraction at low temperature.  相似文献   

13.
In contrast to the simple diynyl complexes formed in reactions between HCCCCFc and MCl(dppe)Cp∗; (M = Fe, Ru), an analogous reaction with RuCl(PPh3)2Cp∗; in the presence of KPF6 and dbu resulted in dimerisation of the diyne at the Ru centre to afford a mixture of [Ru{η12-C(CCFc)C(L)CHCCCHFc}(PPh3)Cp∗]PF6 (L = dbu 1, PPh32). Similar reactions with RuCl(PR3)2L gave [Ru{η12-C(CCFc)C(dbu)CHCCCHFc}(PR3)L]PF6 (L = Cp, R = Ph 3, m-tol 4; L = η5-C9H7, R = Ph 5). The reaction between 3 and I2, followed by crystallization of the paramagnetic product from MeOH, afforded the dicationic [Ru{C(CCFc)C(dbu)CHC(OMe)C(OMe)CHFc}(PPh3)Cp](I3)26. The molecular structures of 2·2CH2Cl2 and 6.S (S = 2CH2Cl2, C6H6) were determined by single-crystal XRD studies.  相似文献   

14.
15.
The analogues of carboxamides in which the sp2-hybridized oxygen atom is replaced by more electron-withdrawing groups, NSO2CF3 and NSO2C4F9, have been synthesized. The resulting N-perfluoroalkylsulfonyl arenecarboxamidines ArC(NSO2Rf)NH2 (Rf = CF3, C4F9) undergo an oxidative Hofmann-type rearrangement to the corresponding carbodiimides ArNCNSO2Rf under the action of (diacyloxyiodo)arenes. Rearrangement of related compounds ArC(NSO2R)NH2 (R = CH3, Ph) containing fluorine-free substituents at the sulfonyl group also occurs in similar conditions. It was found that the reactivity of amidines rises with the increasing electron-withdrawing ability of the substituent R.  相似文献   

16.
Selective anodic fluorination of electrophilic alkenes   总被引:1,自引:0,他引:1  
Anodic fluorination of some electrophilic alkenes (conjugated with electron-withdrawn groups), ethyl cinnamates, RC6H4CHCHCO2Et (R = H, CH3, CH3O, F and CF3), cinnamonitrile, C6H4CHCHCN, phenyl stryryl ketone, and t-butyl styryl ketone using ammonium fluorides as the fluorine source and supporting electrolyte, in CH2Cl2 as electrolytic solvent yields the expected vicinal difluoro compounds, as mixture of erythro and threo isomers. The anodic fluorination of phenyl 3,5-di-t-butyl-4-hydroxystyryl ketone yields two monofluoro compounds. A possible reaction mechanism is discussed.  相似文献   

17.
The Raman spectra of several pairs of alkenyl methyl ethers of general structure R1R2CCR5C(R3R4)OCH3 and R1R2C(OCH3)C(R5)CR3R4 (R1, R2, R3, R4, R5 = H or CnH2n+1, n = 1-3) are reported and discussed, with a view to establishing whether Raman spectroscopy offers a viable means of distinguishing between these isomeric unsaturated species. Key bands associated with the ν(sp2CH) and ν(CC) stretching modes are found to be particularly useful in this connection: R1R2CCHCH2OCH3 and R1R2C(OCH3)CHCH2 ethers (R1, R2 = CH3, C2H5) are easily distinguished on this basis. Differentiation of their lower homologues, R1CHCHCH2OCH3 and R1CH(OCH3)CHCH2 (R1 = CH3, C2H5, C3H7), by similar means is also quite straightforward, even in cases where cis and trans isomers are possible. Pairs of isomeric ethers, such as CH3CHC(CH3)CH2OCH3 and CH3CH(OCH3)C(CH3)CH2, in which the structural differences are more subtle, may also be distinguished with care. Deductions based on bands ascribed to the stretching vibrations are usually confirmed by consideration of the signals associated with the corresponding δ(sp2CH) deformation vibrations. Even C2H5CHCHCH(C3H7)OCH3 and C3H7CHCHCH(C2H5)OCH3 are found to have distinctive Raman spectra, but differentiation of these closely related isomers requires additional consideration of the low wavenumber region.  相似文献   

18.
The reactions of the alkenes with supercritical organic compounds under non-catalytic conditions were investigated. The H and CR2OH, CH2COCH3 or CH2CN of supercritical alcohols (CHR2OH), acetone (CH3COCH3) or acetonitrile (CH3CN) added to the CC bonds of alkenes form C-C bonds between the α-carbons of the supercritical organic compounds and the sp2 carbons of the alkenes.  相似文献   

19.
Reaction of (Ph2P(o-C6H4)CHNCH2CH2)3N with 3 equiv. of Os3(CO)10(NCMe)2 at ambient temperature affords the triple cluster [Os3(CO)10Ph2P(o-C6H4)CHNCH2CH2]3N (1) through coordination of the phosphine and imine groups. Thermolysis of 1 in benzene leads to decarbonylation and C-H/C-N bond activation of the ligand to generate (μ-H)Os3(CO)83-Ph2P(o-C6H4)CHNCCH2) (2). The molecular structure of 2 has been determined by an X-ray diffraction study.  相似文献   

20.
Treatment of the thiosemicarbazones 4-FC6H4C(Me)NN(H)C(S)NHR, (R = Me, a; Ph, b) and 2-ClC6H4C(Me)NN(H)C(S)NHR (R = Ph, c) with lithium tetrachloropalladate(II) in methanol or palladium(II) acetate in acetic acid gave the tetranuclear cyclometallated complex [Pd{4-FC6H3C(Me)NNC(S)NHR}]4 (1a, 1b) and [Pd{2-ClC6H3C(Me)NNC(S)NHPh}]4 (1c). Reaction of these tetramers with the diphosphines dppe, t-dppe, dppp or dppb in a 1:2 molar ratio gave the dinuclear cyclometallated complexes [(Pd{4-FC6H3C(Me)NNC(S)NHR})2(μ-Ph2P(CH2)nPPh2)], (n = 2, 2a, 2b; 3, 4a, 4b; 4, 5a, 5b), [(Pd{4-FC6H3C(Me)NNC(S)NHPh})2(μ-Ph2PCHCHPPh2)], (3a, 3b) and [(Pd{2-ClC6H3C(Me)NNC(S)NHR})2(μ-Ph2P(CH2)nPPh2)], (n = 2, 2c, 2d; 3, 4c, 4d; 4, 5c, 5d), [(Pd{2-ClC6H3C(Me)NNC(S)NHPh})2(μ-PPh2CHCHPPh2)], (3c, 3d). The X-ray crystal structure of the ligand b and the complexes 3c, 4a and 4d were determined. The structures of complexes 4a and 4d show that the different disposition of the chain cyclometallated of the thiosemicarbazones (in the same orientation or in the opposite one) is due to the different H bonds produced.  相似文献   

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