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1.
Silicon-transition metallic silacyclobutanes CpFe(L2)Si(Me)CH2CH2CH2 [L = CO or Ph2MeP; or L2 = (CO)(Ph2MeP)] have been prepared and their reactions (substitution at Si or Fe, Si—Fe cleavage, or ring-opening) studied.  相似文献   

2.
The kinetics of the reaction of arylcyclopropanes (4-XC6H4C3H5, X = H, Me, EtO) with either [Pt2Cl2(μ-Cl)2(C2H4)2] or [{PtCl2(CH2CH2CH2)} in tetrahydrofuran to give in each case [{PtCl2(CHArCH2CH2)}4] and ethylene or cyclopropane, respectively, have been studied. The reactions are essentially first order in both arylcyclopropane and platinum complexes. The order of reactivity follows the series X = EtO > > Me > H, and [Pt2Cl2(μ-Cl)2(C2H4)2]> [{PtCl2(CH2CH2CH2)}4] and the rate is accelerated in polar solvents. Mechanisms in which the arylcyclopropane first coordinates to platinum and then undergoes ring opening reactions are proposed.  相似文献   

3.
The interaction of azobenzene and MnR(CO)5 (R  Me, Et, CH2Ph, CH2-C6Me5, COCF3, COCH2C6F5, COCH2OPh, Ph or C6F5) affords Mn(C6H4NNPh)-(CO)4, together with a binuclear complex Mn2(CO)6(C12H10N2) in some cases. The metallation reaction is shown to proceed most readily with Mn-(CH2Ph)(CO)5; with this reagent, the metallated complexes Mn(C6H4CH2PMe2)-(CO)3[PMe2(CH2Ph)] (two isomers) and Mn(C6H4CH2AsMe2(CO)4 have been obtained on treatment with EMe2(CH2Ph) (E  P and As, respectively).  相似文献   

4.
The amine substituted phosphines (C6H5)2PN(H)CH2CH3 and (C6H5)2PN(H)CH2C6H5 react with C5H5Fe(CO)2CH(C6H5) (OCH3) photolytically to give moderate yields of the four-membered chelate ring complexes C5H5Fe (CO) [(C6H5)2PN (CH2CH3) CH (C6H5)] and C5H5Fe (CO) [(C6H5)2 PN (CH2C6H5)CH(C6H5)], respectively. Photolysis of C5H5Fe(CO)2CH(C6H5) (OCH3) in the presence of (S)-(?)-diphenyl(1-phenylethylamino)phosphine leads to the isolation of C5H5Fe(CO)[(C6H5)2PNC(CH3) (C6H5)]CH2C6H5 which is proposed to arise from a formally 1,3-hydrogen shift rearrangement of an intermediate four-membered chelate ring complex.  相似文献   

5.
The synthesis and properties of a series of trans-halocarbonylrhodium(I) complexes containing the phosphinoalkylorganosilicon ligands Me3SiCH2PPh2, Me3Si(CH2)3PPh2, and PPh2CH2(Me)Si(OSiMe2)3O have been investigated. The complexes could be prepared by an exchange reaction involving RhCl(CO)(PPh3)2 and the organosilicon ligands or in better yields by the reaction of Rh2Cl2(CO)4 with the ligands. Iodorhodium derivatives were obtained as the exclusive products in the latter reaction if a small amount of LiI was present. The catalytic activity of RhCl(CO)(PPh2CH2SiMe3)2 was similar to that of RhCl(CO)(PPh3)2 in the hydroformylation of hex-1-ene at 100°C and 1000 psi pressure of H2/CO. The catalytic properties of the iodo derivatives RhI(CO)L2 [L = Me3SiCH2PPh2, Me3Si(CH2)3PPh2, and PPh2CH2(Me)Si(OSiMe2)3O] varied considerably, with RhI(CO)(PPh2CH2SiMe3)2 producing an unexpectedly low linear/branched aldehyde product ratio.  相似文献   

6.
Variable temperature 1H NMR spectroscopy has been used in the study of 1,3-intramolecular shifts of the M(CO)5 moiety in complexes of the general formula [M(CO)5L], (M = Cr or w), L = SCH2SCH2SCH2, SCH2SCH2CH2CH2 and SCH(Me)SCH2CH2CH2. For the 1,3,5-trithian complexes precise energy barriers for the process have been obtained by detailed computer simulation of the static and dynamic spectra. Our results suggest that the magnitude of ΔG (298.15 K) for the 1,3-shift is largely dependent upon the skeletal flexibility of the ligand system. In this context we have investigated the X-ray crystal structure of the highly substituted trithian complex [W(CO)5{β-SCH(Me)SCH(Me)SCH(Me)}].  相似文献   

7.
The addition of trimethylphosphane to five-membered metallacyclic vinylketone complexes of the type ArM(CO)2(HCCHCOR) (I) (Ar = η5-aromatic ring system: C5H5, C5H4Me, C5Me5; R = Me, Et, n-Bu; M = Mo, W) in pentane solution results in the formation of the ylidic metallacyclopropane complexes ArM(CO)2[(PMe3)-HCCH(COR)] (II). In these 1:1 adducts the three-membered ring is stabilized by an electron-donating phosphonium and an electron-attracting acyl substituent. The negative charge in the ylidic complexes II is localized on the central metal providing it with Lewis base properties. An extraordinary high electron density can be observed on the metal of the derivative C5H5W(CO)(PMe3)[(PMe3)HCCH-(COMe)] (III) which is formed by a 1:2 addition of C5H5W(CO)(C2H2)-(COMe) and PMe3. The metallacyclopropane complexes II and III are characterized by IR, 1H NMR, 13C NMR, 31P NMR and mass spectroscopy. For C5H5W(CO)2[(PMe3)HCCH(COMe)], the results of an X-ray structure determination are presented.  相似文献   

8.
The kinetics of the reaction of alkenes (e.g. cis-pent-2-ene, hex-1-ene, cyclopentene) with [PtX2(CH2CH2CH2)(THF)2] (X = Cl or Br, THF = tetrahydrofuran) or with [PtCl2(CHPhCH2CH2)(THF)2] in THF solution have been studied. The reactions occur with displacement of cyclopropane or phenylcyclopropane to give [PtCl2(olefin)(THF)], and follow essentially second order kinetics, first order in both platinum complex and olefin. The mechanism of reaction is discussed.  相似文献   

9.
In the 1H NMR spectrum of the complex [Os3H3(CO)9CC(CH2CH2]+ at 30°C, under conditions of rapid exchange, the single hydride resonance has two sets of satellites of equal intensity (separated by 32.0 and 28.8 Hz) caused by 187Os1H spin—spin coupling. The spectral data rule out the upright carbenium ion structure for the complex, and are consistent with the fluxional process involving hydrocarbon ligand rotation about the CC(CH2)2CH2 axis in a tilted structure, with concomitant rotation of the Os3H3(CO)9 moiety.  相似文献   

10.
η5-C5H5(CO)2FeNa reacts with the benzimide chlorides C6H5(Cl)CNR (R  CH(CH3)2, C6H5) in boiling THF to give the η1-iminoacyl complexes η5-C5H5 (CO)2Fe[η1-C(C6H5)NR]. Alternatively, the new Fe complexes [η5-C5H5(CO)FeC(C6H5)N(CH3)C(C6H5)NCH3PF6 (IV) and [η5-C5H5(CO)2FeC(C6H5)N(CH3)C(C6H5)NCH3]PF6 (V) are formed under the same conditions, if R  CH3. Hudrolysis of the CN single bond of the ligand in V, not stabilized by a chelate effects as in IV, results in the formation of [η5-C5H5(CO)2FeC(C6H5)NHCH3]PF6 (VII). Reaction of η5-C5H5(CO)2 with N-benyzylbenzimido chloride yields η5-C5H5(CO)2FeCH2C6H5 as the only isolated product.  相似文献   

11.
The platinacyclobutane complexes PtCl2L2(C3H5Me)], L  pyridine, CD3CN, or tetrahydrofuran, exist as mixtures of isomers containing PtCH2CHMeCH2 or PtCHMeCH2CH2 groups in rapid equilibrium. Decomposition occurs in some cases to give [PtCl2L(CH3CH2CHCH2)]. Stereospecific skeletal isomerisation also occurs in metallocyclobutanes containing the groups PtCHRCHRCH2  PtCHRCH2CHR, when R  aryl further decomposition gives ν-allylplatinum complexes.  相似文献   

12.
The platinacyclopentane derivative [Cl(CH2)3R2P](Cl)PtPR2CH2CH2CH2 is formed by action of Cl(CH2)3PR2 on Pt(COD)2 in n-hexane via the not isolable Pt[PR2(CH2)3Cl]2 (R  C6H11) by oxidative addition of a CCl bond to platinum. [μ-CIRh(CO)2]2 reacts in benzene with Cl(CH2)3PR2 under partially CO substitution to give the stable intermediate Cl(OC)Rh[PR2(CH2)3Cl]2. In boiling toluene oxidative addition of a CCl bond to rhodium occurs under formation of the phospharhodacyclopentane [CI(CH2)3R2P] Cl2(OC)-RhPR2CH2CH2CH2 (R  C6H5). The 31P{1H}-NMR spectra of the rhodium compound is characterized by an ABX system, that of the platinum by superposition of an ABX pattern with an AB spectrum.  相似文献   

13.
A number of carbene complexes of formulas Cl3GeMn(CO)4C(OR′)R and C5H5Mo(CO)2(GeCl3)C(OR′)CH3 (R = CH3, C6H5; R′ = CH3, C2H5) have been prepared by the reaction of [N(C2H5)4]GeCl3 with CH3Mn(CO)5, C6H5Mn(CO)5, or C5H5Mo(CO)3CH3 followed by alkylation of the resulting trichlorogermylacylcarbonylmetallate ion. The compound C5H5Mo(CO)2(GeCl3)COCH2CH2CH2 has been prepared directly by the reaction of [N(C2H5)4]GeCl3 with C5H5Mo(CO)3(CH2)3Br.  相似文献   

14.
Treatment of Ir2Cl2(C8H14)4 with the phosphines t-Bu3?nP(CH2CMe3)n (n = 3,2,1) in hot toluene followed by crystallization of the products from C7H8/ EtOH mixtures gave the cyclometallated hydrides (C8H14)2Ir-μ-Cl2IrH[CH2CMe2CH2P(CH2CMe3)2][P(CH2 (I) [t-BuP(CH2CMe3)2]2H2Ir-μ-Cl2IrH[CH2CMe2CH2PBut(CH2CMe3)][t-BuP(CH2CMe3)2] (II), and [(t-Bu2PCH2CMe2CH2)HIrCl]2 (III). The dihydrides IrH2Cl[t-BuP(CH2CMe3)2]2 (IIa) and IrH2Cl(t-Bu2PCH2CMe3)2 (IIIa) were also isolated; these species were, however, more conveniently obtained by bubbling hydrogen through the solution of Ir2Cl2 (C8H14)4 and the respective phosphine in toluene. i-Pr3 reacted with the olefiniridium(I) precursor in C7H8/EtOH to yield the carbonyl complexes (i-Pr3P)2H2Ir-μ-Cl2Ir(CO)(PPri3)2 (IV) and IrCl(CO)(PPi3)2 (IVa), no cyclometallated product being detected. The stereochemistries of the complexes were deduced from IR, 1H, 31P, and 13C NMR data. The crystal structures of IIIa and IVa were also determined.  相似文献   

15.
The metal carbonyl anions [Fe(η-C5H5(CO)2]? and [Re(CO)5] undergo regio- and site-specific [2 + 2]-cycloadditions with the ketenimines Ph2CCNR (R = Me, Ph) to give the (isolable) anionic complexes [LnM{C(CPh2)N(R)C(O)}]? (LnM = Fe(η-C5H5)CO, Re(CO)4) which have been alkylated and acylated at the exocyclic oxygen atom of the carbonyl function. The result is stable neutral complexes having a metallaazetidine structure which is composed of an α-metallated enamine and an N,O carbene part. IR, 1H, and 13C NMR data are presented.  相似文献   

16.
The reaction of the phosphonium metallates Me4P[C5R5(CO)(Me3P)MC(O)=CHC(O)R′] (M = W, R = H, R′ = Et (1a); M = Mo, R = Me, R′ = Me (1b)) with the silylating reagent Me3SiOSO2CF3 yields the neutral complexes C5R5(CO)(Me3P)MC(OSiMe3)=CHC(O)R (2a, 2b) bearing a chelating O(2), C(4)-trimethylsiloxybutenone ligand. The structure of the new compounds is established by the IR, 1H and 31P NMR spectra.  相似文献   

17.
The phosphine Ph2PCH2CH2Cl reacts with fac-[XMn(CO)3(dppm)] (X = Cl or Br) in refluxing toluene to give the complexes cis,cis-[XMn(CO)2(dppm)(Ph2PCH2CH2Cl)] (I). Treatment of those species with Na amalgam in THF leads to the alkyl complex [Ph2PCH2CH2Mn(CO)2(dppm)] (II), which does not react with CO under normal conditions but can be converted into cis,cis-[ClMn(CO)2(dppm)(PPh2Et)] by reacting with HCl (g) in ether. If the reduction of I with Na/Hg is carried out in the presence of CO the compound cis-[Ph2PCH2CH2(O)CMn(CO)2(dppm)] (III) is obtained. The latter has also been prepared directly from fac-[BrMn(CO)3(dppm)], Ph2PCH2CH2Cl, and Na/Hg in THF, and characterized by X-ray crystallography. The crystals are monoclinic, space group P21/n; refinement gave R = 0.053 for 2593 reflections with I ? 2.5σ(I). The reaction of the complex fac-[O3ClOMn(CO)3(dppm)] with Ph2PCH2CH2Cl in Cl2CH2 gives the salt fac-[Mn(CO)3(dppm)(Ph2PCH2CH2Cl)]ClO4 which isomerizes to mer-[Mn(CO)3(dppm)(Ph2PCH2CH2Cl)]ClO4 in boiling butanol. Both cationic carbonyl complexes give the acyl species III upon reduction with Na amalgam.  相似文献   

18.
The six- and seven-membered rhenacycloalkanes (OC)4RePR2OCH2XCH2 (R = CH3, CoH5; X = CH2, CH2CH2) are obtained by reaction of the binuclear anions [(OC)4RePR2O]22? with the alkanediylbis(triflouromethanesulfonates) X(CH2Y)2 (Y = CF3SO2O) in dimethoxyethane. In the Reσ bond of (OC)4RePPh2OCH2CH2CH2SO2 can be inserted under ring expansion. The rhenacycloheptanes (OC)4RPR2OCH2CH2CH2CH2 (R = CH3, CoH5) are thermally unstable and decompose by cleavage of the α-CC bond. The heterolytic cleavage of the ReRe bond in [(OC)4RePR2O]22? results in the open chain, ionic intermediate products [R2(O)PRe(CO)4CH2XCH2Y]?, which in competition with the cyclisation, are liable to a β-hydrogen transfer. The mechanisms which are responsible for the formation of the hdrido complexes [HRe(CO)4PR2O]? and HRe(CO)4PR2OCH2XCH3, are discussed.  相似文献   

19.
The products of the photolysis of a number of platinacyclopentanes in solution at 25°C under a variety of conditions have been determined. With [I2PtCH2CH2CH2CH2(L2)] (L = PMe2Ph, PPh3) in CH2Cl2, CH2Br2 and (CH3)2SO the hydrocarbon products are exclusively ethylene and but-1-ene. Formation of the latter through a 1,3-hydrogen shift is preceded by phosphine ligand dissociation. The photolysis of [ICH3PtCH2CH2CH2(L2)] gave methane, ethylene, but-1-ene and n-pentane together with a little n-butane, the methane being formed from internal hydrogen abstraction by the CH3 group in the excited reactant molecule. Photodecomposition of the platinum(II) compounds [PtCH2CH2CH2CH2(L2)] (L = (PMe2Ph)2, (PPh3)2, Ph2PCH2CH2PPh2) gave ethylene, but-1-ene, pent-1-ene (with the halogenated solvents) and with some systems appreciable yields of n-butane, the latter being the results of internal abstraction of two hydrogen atoms by the C4H8 moiety. The formation of pentene is probably preceeded by the addition of CH2Cl2 or CH2Br2 to the excited reactant molecule. Addition of diphenylphosphine promotes the production of n-butane.  相似文献   

20.
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