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1.
A number of organometallic stilbenes of the general type [Co(η4-C4Ph4)(η5-C5H4CHCHR] are reported where R is C6H4X-4 (X = H, OMe, Br, NO2), 1-naphthyl, 9-anthryl, 1-pyrenyl, (η5-C5H4)Co(η4-C4Ph4), and (η5-C5H4)Fe(η5-C5H4Y) {Y = CHO, CHC(CN)2 and CHCHC5H45)Co(η4-C4Ph4)}. They were prepared by Wittig or Horner-Wadsworth-Emmons reactions which yield both E and Z or only E products respectively. The isomers were separated and all compounds characterised by standard spectroscopic techniques as well as by X-ray diffraction methods in many cases. The electrochemistry of the stilbene analogues in dichloromethane solution is also reported. In most, the (η5-C5H4)Co(η4-C4Ph4) functional group undergoes a reversible one-electron oxidation. For those molecules that also include (η5-C5H4)Fe(η5-C5H4Y), this is preceded by the reversible oxidation of the ferrocenyl group. Spectroscopic and structural data suggests that for most compounds there is little electronic interaction between Co(η4-C4Ph4)(η5-C5H4) and the R end groups which are effectively independent of one another. The only exceptions to this are Z and E-[Co(η4-C4Ph4)(η5-C5H4CHCHC6H4NO2-4], and [Co(η4-C4Ph4)(η5-C5H4CHCHC5H45)Fe{η5-C5H4CHC(CN)2}] where the electronic spectra are respectively consistent with a significant Co(η4-C4Ph4)(η5-C5H4)/NO2 donor/acceptor interaction and a less significant Co(η4-C4Ph4)(η5-C5H4)/C(CN)2 one. However, OTTLE studies show that in the electronic spectra of [Co(η4-C4Ph4)(η5-C5H4CHCHR]+ there are low energy absorption bands (950-1800 nm) which are attributed to R → Co(η4-C4Ph4)(η5-C5H4)+ or, when R is a ferrocenyl-base group, Co(η4-C4Ph4)(η5-C5H4) → (η5-C5H4)Fe(η5-C5H4Y)+ charge transfer transitions. The ferrocenyl compounds undergo cis/trans isomerisation on the OTTLE experiment timescale.  相似文献   

2.
The monoxides [Fe(η5-C5Me4PPh2)(η5-C5Me4P{O}Ph2)] (1) and [Os(η5-C5H4PPh2)(η5-C5H4P{O}Ph2)] (2) have been prepared by treatment of the corresponding diphosphines with CCl4 and methanol.These ligands react with [Pd(PhCN)2Cl2] to give dichloride complexes of different structure.The dimeric complex [{Os(η5-C5H4PPh2)(η5-C5H4P{O}Ph2)}PdCl(μ-Cl)]2 (4) contains the monodentate P-coordinated osmocene ligand with the free P{O}Ph2 group, while the octamethylferrocene ligand gives the chelate k2-P,O complex [{Fe(η5-C5Me4PPh2)(η5-C5Me4P{O}Ph2)}PdCl2] (3).The structures of 3 and 4 have been determined crystallographically.Treatment of 3 and 4 with silver salts in CH2Cl2 or acetonitrile leads to the corresponding dicationic complexes[{M(η5-C5R4PPh2)(η5-C5R4P{O}Ph2)}Pd(MeCN)x]2+ (5, M = Fe, R = Me; 6, M = Os, R = H). Complex 5 decomposes upon isolation, in contrast 6 is rather stable, probably due to Os-Pd bonding. The dichlorides 3 and 4 catalyze catalytic amination of p-bromotoluene with N-(4-tolyl)morpholine with lower activity than (dppf)PdCl2, however they perform comparable to (dppf)PdCl2 activity in coupling of p-bromotoluene with p-methoxyphenyl boronic acid.  相似文献   

3.
4.
The dialkyl complexes, (R = Pri, R′ = Me (2a), CH2Ph (3a); R = Bun, R′ = Me (2b), CH2Ph (3b); R = But, R′ = Me (2c), CH2Ph (3c); R = Ph, R′ = Me (2d), CH2Ph (3d)), have been synthesized by the reaction of the ansa-metallocene dichloride complex, [Zr{R(H)C(η5-C5Me4)(η5-C5H4)}Cl2] (R = Pri (1a), Bun (1b), But (1c), Ph (1d)), and two molar equivalents of the alkyl Gringard reagent. The insertion reaction of the isocyanide reagent, CNC6H3Me2-2,6, into the zirconium-carbon σ-bond of 2 gave the corresponding η2-iminoacyl derivatives, [Zr{R(H)C(η5-C5Me4)(η5-C5H4)}{η2-MeCNC6H3Me2-2,6}Me] (R = Pri (4a), Bun (4b), But (4c), Ph (4d)). The molecular structures of 1b, 1c and 3b have been determined by single-crystal X-ray diffraction studies.  相似文献   

5.
The tetraethyl- and tetramethyl-cyclobutadiene complexes [(η4-C4R4)Co(η5-C5H4CHO)] R = Et, 5, R = Me, 7, and [(η4-C4R4)Co(η5-C5H4CO2Me)] R = Et, 6, R = Me, 8, are conveniently prepared by photolysis of the corresponding isocobaltocenium cations [(η4-C4R4)Co(η6-C6H5Me)]+ in acetonitrile, and subsequent treatment with Na[C5H4CHO] or Na[C5H4CO2Me]. The aldehydes 5 and 7 undergo Wittig and Knoevenagel reactions with [FcCH2PPh3]I and CH2(CN)2, to form [(η4-C4R4)Co(η5-C5H4CH=CHFc)] and [(η4-C4R4)Co(η5-C5H4CH=C(CN)2], 11 and 15, respectively. The Horner-Wittig reaction of [(η4-C4R4)Co(η5-C5H4CH2P(O)(OEt)2] with [(η4-C4Ph4)Co(η5-C5H4CHO)] yields [(η4-C4R4)Co(η55-C5H4CHCH-C5H4)Co(η4-C4Ph4)], 12 and 13. [(η4-C4Me4)Co(η5-C5H4CHO)] also reacts with t-BuLi and FcLi to furnish the corresponding secondary alcohols, 16 and 17, respectively. Surprisingly, the attempted direct synthesis of 5 by reaction of Na[C5H5] and ethyl formate with [(η4-C4Et4)Co(CO)2I], 1, instead yielded [(η5-C5H5)Co(η4-3,4,5,6-tetraethyl-α-pyrone)], 18, and a mechanistic proposal is advanced. The X-ray crystal structures of 1, 7, 8, 11(Z), 15 and 18, and also the isocobaltocenium salts [(η4-C4Et4)Co(η6-C6H5Me)][PF6], 2, and [(η4-C4Et4)Co(η6-1,3,5-C6H3Me3)][PF6], 4, are reported.  相似文献   

6.
The pressure dependences (dν/dP) of the main IR and Raman bands of Zeise’s complexes, K[Pt(η2-C2H4)Cl3] and [Pt(η2-C2H4)Cl2]2, have been determined for the first time for selected pressures up to ∼33 kbar with the aid of diamond-anvil cells. Neither complex undergoes a pressure-induced structural change throughout the pressure range investigated. The dν/dP values range from −0.13 to 0.79 cm−1 kbar−1. The negative values have proved particularly informative in identifying the location of the CC stretching modes of the Pt-ethylene groups, a topic of considerable disagreement in the literature.  相似文献   

7.
With copper(I) iodide as catalyst, σ-alkynyls, compounds (η5-C5H5)Cr(NO)2(CC-C6H5) (5), [(η5-C5H4)-COOCH3]Cr(NO)2(CC-C6H5) (10), and [(η5-C5H4)-COOCH3]W(CO)3(CC-C6H5) (13), were prepared from their corresponding metal chloride 1, 6 and 12. Structures of compound 3, 5 and 12 have been solved by X-ray diffraction studies. In the case of 5, there is an internal mirror plane passing through the phenylethynyl ligand and bisecting the Cp ring. The phenyl group is oriented perpendicularly to the Cp with an eclipsed conformation. The twist angle is 0° and 118.4° for -CC-Ph and two NO ligands, respectively. The orientation is rationalized in terms of orbital overlap between ψ3 of Cp, dπ of Cr atom, and π of alkynyl ligand, and complemented by molecular orbital calculation. The opposite correlation was observed on the chemical shift assignments of C(2)-C(5) on Cp ring in compounds 6 and 12, using HetCOR NMR spectroscopy. The electron density distribution in the cyclopentadienyl ring is discussed on the basis of 13C NMR data and compared with the calculations via density functional B3LYP correlation-exchange method.  相似文献   

8.
Cobaltacarboranes (η1, η3-cyclooctenediyl)Co(Carb) (Carb = η-9-SMe2-7,8-C2B9H10, η-1-tBuHN-1,7,9-C3B8H10) were synthesized by the reaction of the carborane anions [Carb] with the acetonitrile complex [(η1, η3-cyclooctenediyl)Co(MeCN)3]+ generated in situ upon the dissolution of [(η1, η3-cyclooctenediyl)Co(η-1,4-C6H4Me2)]+ in MeCN. The structures of (η13-cyclooctenediyl)Co(η-9-SMe2-7,8-C2B9H10 and [(η22-cyclooctadiene)Co((η-1,2,4,5-C6H2Me4)]BF4 were determined by X-ray diffraction analysis.  相似文献   

9.
The cyclopentadienylchromium carbonyl thiocarbonyls Cp2Cr2(CS)2(CO)n (n = 4, 3, 2, 1) have been studied by density functional theory using the B3LYP and BP86 functionals. The lowest energy Cp2Cr2(CS)2(CO)4 structure can be derived from the experimentally characterized unbridged Cp2Cr2(CO)6 structure by replacing the two terminal carbonyl groups furthest from the Cr-Cr bond with two terminal CS groups. The two lowest energy Cp2Cr2(CS)2(CO)3 structures have a single four-electron donor η2-μ-CS group and a formal Cr-Cr single bond of length ∼3.1 Å. In contrast to the carbonyl analogue Cp2Cr2(CO)5 these Cp2Cr2(CS)2(CO)3 structures are viable with respect to disproportionation into Cp2Cr2(CS)2(CO)4 and Cp2Cr2(CS)2(CO)2 and thus are promising synthetic targets. The lowest energy Cp2Cr2(CS)2(CO)2 structures have all two-electron donor CO and CS groups and short CrCr distances around ∼2.3 Å suggesting the formal triple bonds required to give the chromium atoms the favored 18-electron configurations. These Cp2Cr2(CS)2(CO)2 structures are closely related to the known structure for Cp2Cr2(CO)4. In addition, several doubly bridged structures with four-electron donor η2-μ-CS bridges are found for Cp2Cr2(CS)2(CO)2 at higher energies. The global minimum Cp2Cr2(CS)2(CO) structure is a triply bridged triplet with a CrCr triple bond (2.299 Å by BP86). A higher energy singlet Cp2Cr2(CS)2(CO) structure has a shorter Cr-Cr distance of 2.197 Å (BP86) suggesting the formal quadruple bond required to give each chromium atom the favored 18-electron configuration.  相似文献   

10.
The half-sandwich complex [Ti{(η5-C5H4)B(NiPr2)N(H)iPr}(NMe2)3] (6) was prepared from (η1-C5H5)B(NiPr2)N(H)iPr (5) and [Ti(NMe2)4] with cleavage of one equivalent of HNMe2 and further converted into the corresponding constrained geometry complex [Ti{(η5-C5H4)B(NiPr2)NiPr}(NMe2)2] (7) by elimination of a second equivalent of HNMe2. Reaction of the half-sandwich complexes [Ti{(η5-C5H4)B(NiPr2)N(H)R}(NMe2)3] (R = iPr, tBu) with excess Me3SiCl yielded the corresponding dichloro complexes [Ti{(η5-C5H4)B(NiPr2)N(H)R}Cl2(NMe2)] (R = tBu (10), iPr (11)). The intermediate species [Ti{(η5-C5H4)B(NiPr2)N(H)iPr}Cl(NMe2)2] (9) could also be spectroscopically characterised. Partial hydrolysis of 10 and 11, respectively, resulted in formation of [{TiCl2(μ-{OB(NHMe2)-η5-C5H4})}2-μ-O] (12). The molecular structures of 10 and 12 have been determined by X-ray crystallographic analyses. Complex 10, when activated with MAO, was found to be a highly active styrene polymerisation catalyst while being inactive towards the polymerisation of ethylene.  相似文献   

11.
Visible light irradiation of the benzene complex [(η-1-ButNH-1,7,9-C3B8H10)Fe(η-C6H6)]+ in the presence of the charge-compensated carborane anions [9-L-7,8-C2B9H10] (L = SMe2, NMe3) affords ferracarboranes (η-1-ButNH-1,7,9-C3B8H10)Fe(η-9-L-7,8-C2B9H10). Their structures were established by X-ray diffraction analysis.  相似文献   

12.
13.
The new ferrocenylmethylphosphines PH(CH2Fc)2 (1) [Fc = Fe(η5-C5H5)(η5-C5H4)] and P(CH2Fc)3 (2) and the phosphonium salt [P(CH2Fc)3(CH2OH)]I (3) were synthesised from P(CH2OH)3 and [FcCH2NMe3]I. [P(CH2Fc)(CH2OH)3]Cl (4) was obtained from P(CH2Fc)(CH2OH)2, CH2O and HCl. The new phosphines and phosphonium salts were fully characterised by NMR and IR spectroscopy and MS. [Mo(CO)6] reacts with 1 to give [Mo(CO)5{PH(CH2Fc)2}] (5) in high yield, but attempts to employ 2 as a ligand failed. The reaction of [P(CH2Fc)3(CH2OH)]I (3) and [PH(CH2Fc)3]I (obtained in situ from 3 and Na2S2O5) with [WI2(CO)3(NCMe)2] gave the complex salts [P(CH2Fc)3(CH2OH)][WI3(CO)4] (6) and [PH(CH2Fc)3][WI3(CO)4] (7), respectively. [P(CH2Fc)4]I (8) was synthesized from PH2CH2Fc and [FcCH2NMe3]I. Crystal structures were obtained for 1, 3-8.  相似文献   

14.
The reduction of [Nb(NBut)(η5-C5H4SiMe3)2Cl] by sodium amalgam followed by oxidation by [Fe(η5-C5H5)2][BPh4] in the presence of CNBut gave [Nb(NBut)(η5-C5H4SiMe3)2(CNBut)][BPh4] (1). In a similar manner, [Nb(NPh)(η5-C5H4SiMe3)2(CNBut)][BPh4] (2), [Nb(NPh)(η5-C5H4SiMe3)2(CO)][BPh4] (3) and [Nb(NBut){Me2Si(η5-C5Me4)(η5-C5H4)}(CNBut)][BPh4] (4), were prepared. The reduction of [Nb(NBut){Me2Si(η5-C5H4)2}Cl] gave, depending on the experimental conditions, either the d1-d1 dimer [(Nb{Me2Si(η5-C5H4)2}(μ-NBut))2] (5) or the hydride derivative [Nb(NBut){Me2Si(η5-C5H4)2}H] (6). The reaction of 5 with I2 led to the formation of [Nb(NBut){Me2Si(η5-C5H4)2}I] (7). The molecular structure of 1 was determined by single-crystal X-ray diffraction studies.  相似文献   

15.
The structure and dynamic behavior of complex [(η5-C5H4CH3)Cr(CO)2(μ-SBu)Pt(PPh3)2] in solution was studied by multinuclear (1H, 13C, 31P) NMR spectroscopy including a phase-sensitive NOESY experiment. Increasing temperature causes rupture of the Cr-Pt bond in the three-membered ring of the complex and rotation of the S-Pt(PPh3)2 unit around the Cr-S bond line, followed by formation of a new Cr-Pt bond to close the ring. All activation parameters for this dynamic process have been determined.  相似文献   

16.
Yukihiro Motoyama 《Tetrahedron》2005,61(43):10216-10226
Atom-transfer radical cyclization (ATRC) and addition (ATRA) catalyzed by a coordinatively unsaturated diruthenium amidinate complex 4, [(η5-C5Me5)Ru(μ2-i-PrNC(Me)Ni-Pr)Ru(η5-C5Me5)]+, are investigated, and their features are compared with those of atom-transfer radical polymerization (ATRP). As an example of ATRC, a cationic diruthenium amidinate 4 is found to exhibit excellent catalytic reactivity for the cyclization of N-allyl α-halogenated acetamides including an alkaloid skeleton at ambient temperature. A catalytic species generated in situ from a halide complex, (η5-C5Me5)Ru(μ2-i-PrNC(Me)Ni-Pr)Ru(η5-C5Me5)(X) [X=Cl, Br] and sodium salts of weakly coordinating anions such as NaPF6 and NaBPh4 also shows high catalytic activity; this actually provides a solution for a problematic instability of 4 as the practical catalyst. The in situ-generated catalyst species 4 is also active towards the intermolecular ATRA of α,α,γ-trichlorinated γ-lactam with alkenes at rt to afford the corresponding α-alkylated γ-lactams in moderate yields. Examination of ATRP of methyl methacrylate (MMA) showed that both the isolated 4 [Y=PF6] and in situ-generated 4 [Y=PF6] are effective for the polymerization of MMA in the presence of 2-bromoisobutylate as the initiator. Use of the isolated catalyst results in controlled polymerization at initial stage of the reaction; in contrast, the polymerization with in situ-generated catalyst produces poly(MMA) with wide molecular weight distribution. The isolated catalyst 4 is powerful for the activation of a C-Br bond of macromolecule initiators; BrCMe2CO2[O(CH2)4]n-n-Bu (Mn=3800; Mw/Mn=1.2) initiated ATRP of MMA even at 25 °C to afford the poly(THF)-poly(MMA) block copolymer of Mn=26,000 and Mw/Mn=1.2 with the aid of 4. The roles of the coordinatively unsaturated ruthenium species for these reactions are discussed.  相似文献   

17.
[(η5-C5H5)ZrCl3] reacts with [C5H4CH2CH2NMe2]Li yielding the coordination polymer [(C5H5)(C5H4CH2CH2NMe2)ZrCl2]n (1) as a brown solid which is very sensitive to moisture. The reaction of 1 with 1.35 equivalent of HCl (methanolic solution) yields pale yellow green crystals of [(η5-C5H5)(η5-C5H4CH2CH2NHMe2)ZrCl2]2[ZrCl6] (2). Compound 2 was fully characterized on the basis of NMR data and X-ray crystal structure analysis. The formation of this product indicates the elimination of C5H4CH2CH2NMe2 as well as C5H5 ligands from the Zr(IV) metal centre.  相似文献   

18.
A phosphido-bridged unsymmetrical diiron complex (η5-C5Me5)Fe2(CO)4(μ-CO)(μ-PPh2) (1) was synthesized by a new convenient method; photo-dissociation of a CO ligand from (η5-C5Me5)Fe2(CO)6(μ-PPh2) (2) that was prepared by the reaction of Li[Fe(CO)4PPh2] with (η5-C5Me5)Fe(CO)2I. The reactivity of 1 toward various alkynes was studied. The reaction of 1 with tBuCCH gave a 1:1 mixture of two isomeric complexes (η5-C5Me5)Fe2(CO)3(μ-PPh2)[μ-CHC(tBu)C(O)] (3) containing a ketoalkenyl ligand. The reactions of 1 with other terminal alkynes RCCH (R=H, CO2Me, Ph) afforded complexes incorporating one or two molecules of alkynes and a carbonyl group. The principal products were dinuclear complexes bridged by a new phosphinoketoalkenyl ligand, (η5-C5Me5)Fe2(CO)3(μ-CO)[μ-CR1CR2C(O)PPh2] (4a: R1=H, R2=H; 4b: R1=CO2Me, R2=H; 4c: R1=H, R2=Ph). In the cases of alkynes RCCH (R=H, CO2Me), dinuclear complexes having a new ligand composed of two molecules of alkynes, a carbonyl group, and a phosphido group; i.e. (η5-C5Me5)Fe2(CO)3[μ-CRCHCHCRC(O)PPh2] (5a: R=H; 5b: R=CO2Me), were also obtained. In all cases, mononuclear complexes, (η5-C5Me5)Fe(CO)[CR1CR2C(O)PPh2] (6a: R1=H, R2=H; 6b: R1=H, R2=CO2Me; 6c: R1=H, R2=Ph) were isolated in low yields. The structures of 1, 4c, 5b, and 6a were confirmed by X-ray crystallography. The detailed structures of the products and plausible reaction mechanisms are discussed.  相似文献   

19.
Treatment of [W(CO)5THF] with diferrocenyl diselenide, Fc2Se2, yielded the novel metal-metal bonded tungsten(I) complex, [W2(μ-SeFc)2(CO)8] (1: Fc = ferrocenyl, [Fe(η5-C5H5)(η5-C5H4)]), which was characterised by NMR and IR spectroscopy, mass spectrometry, and X-ray crystallography. The corresponding tellurium derivative could not be prepared by an analogous route. The X-ray crystal structure of Fc2Te2 has also been determined.  相似文献   

20.
The synthesis and characterization of pyrazole derivatives of general formula [C6H4-4-R-1-{(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)}] [R = OMe (1a) or H (1b)] with a ferrocenylmethyl substituent are described.The study of the reactivity of compounds 1 with palladium(II) acetate has allowed the isolation of complexes (μ-AcO)2[Pd{κ2-C,N-C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}]2 (2) [R = OMe (2a) or H (2b)] that contain a bidentate [C(sp2, phenyl), N] ligand and a central “Pd(μ-AcO)2Pd” unit.Furthermore, treatment of 2 with LiCl produced complexes (μ-Cl)2[Pd{κ2-C,N-C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}]2 (3) [R = OMe (3a) or H (3b)] that arise from the replacement of the acetato ligands by the Cl.Compounds 2 and 3 also react with PPh3 giving the monomeric complexes [Pd{κ2-C,N-C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}X(PPh3)] {X = AcO and R = OMe (5a) or H (5b) or X = Cl and R = OMe (6a) or H (6b)}, where the phosphine is in a cis-arrangement to the metallated carbon atom. Treatment of 3 with thallium(I) acetylacetonate produced [Pd{κ2-C,N-C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}(acac)] (7) [R = OMe (7a) or H (7b)]. Electrochemical studies of the free ligands and the cyclopalladated complexes are also reported. The dimeric complexes 3 also react with MeO2C-CC-CO2Me (in a 1:4 molar ratio) giving [Pd{(MeO2C-CC-CO2Me)2C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}Cl] (8) [R = OMe (8a) or H (8b)], which arise from the bis(insertion) of the alkyne into the σ{Pd-C(sp2, phenyl)} bond of 3.  相似文献   

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