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1.
The reactions of M(CO)5X ( M = Mn, Re; X = Cl, Br, I) with E2(CF3)4 (E = P, As) between 50 and 90°C yield binuclear complexes of the type M2(CO)8E(CF3)2X with two different bridging ligands, the formation of which is influenced by M (Mn > Re), E (P > As) , and X(I > Br > Cl). The main by-product is the symmetrical system M2(CO)8[E(CF3)2]2, which is however not formed by the partial replacement of X by E(CF3)2 since this reaction requires temperatures above 120°C. The observed products can be explained by a three-step reaction path starting with the cleavage of E2(CF3)4 followed by the subtitution of a cis-CO group in the M(CO)5X component by M(CO)5E(CF3)2 and the ring closure.  相似文献   

2.
A set of phosphine complexes of the type W(CO)3(PX3)2(CH2CH2) (X=H, CH3, F, Cl, Br, and I) were investigated by density functional theory method (BP86) to examine the effect of the substituent X on the orientation of C-C vector of the ethylene ligand with respect to one of the metal-ligand bonds as well as the donation and the backdonation in the bonding ligands of phosphine and ethylene. When X=CH3, H, F, and Cl, the ethylene C-C vector prefers to be coplanar with metal-phosphine bonds, while for the ethylene complexes containing PBr3 and PI3 ligands, the structural preference is coplanarity of the ethylene and the metal-carbonyl bonds. The molecular orbital calculations and natural bond orbital analysis were used to examine the structural consequences derived from these complexes. It can be concluded that the structural preferences in the complexes have a clear relation to electronic effects of phosphine ligands. Our calculations for halide phosphine complexes, particularly for PBr3 and PI3, allow us to conclude that in addition to electronic effects, steric factors can also affect the orientation of the ethylene ligand in complexes.  相似文献   

3.
Treatment of ruthenium complexes [CpRu(AN)3][PF6] (1a) (AN=acetonitrile) with iron complexes CpFe(CO)2X (2a–2c) (X=Cl, Br, I) and CpFe(CO)L′X (6a–6g) (L′=PMe3, PMe2Ph, PMePh2, PPh3, P(OPh)3; X=Cl, Br, I) in refluxing CH2Cl2 for 3 h results in a triple ligand transfer reaction from iron to ruthenium to give stable ruthenium complexes CpRu(CO)2X (3a–3c) (X=Cl, Br, I) and CpRu(CO)L′X (7a–7g) (L′=PMe3, PMe2Ph, PMePh2, PPh3, P(OPh)3; X=Br, I), respectively. Similar reaction of [CpRu(L)(AN)2][PF6] (1b: L=CO, 1c: P(OMe)3) causes double ligand transfer to yield complexes 3a–3c and 7a–7h. Halide on iron, CO on iron or ruthenium, and two acetonitrile ligands on ruthenium are essential for the present ligand transfer reaction. The dinuclear ruthenium complex 11a [CpRu(CO)(μ-I)]2 was isolated from the reaction of 1a with 6a at 0°C. Complex 11a slowly decomposes in CH2Cl2 at room temperature to give 3a, and transforms into 7a by the reaction with PMe3.  相似文献   

4.
The 31P chemical shift of the (C6H5)3-nPXn ligands (X = Cl, Br, I; n = 0–3) is dominated by the electronegativity of the substituents. π bonding is only important for derivatives with three strongly electronegative substituents. The 31P chemical shift of the corresponding complexes (C6H5)3-nPXnCr(CO)5 is governed by the simultaneous effects of the electronegativity, steric hindrance and π bonding. The resonance parameter, δ', indicates an increasing (pringdp)π and (dcrdp)π electron delocalization with halogen substitution.  相似文献   

5.
The rates of the thermal reaction of the nickel(0) complex Ni[P(C2H5)3]4 with the alkyl halides CH3Br, CH3I in toluene have been compared with those of the reactions of the nickel(I) complexes Ni(X)[P(C2H5)3]3 (X  Br,I). The organic products from CH3X are methane and ethane, and those from C2H5I are ethane and ethylene. The reactivity of the nickel(I) complexes is 10–20 times less than that of the nickel(0) complex. The result suggest that the first step of the reaction of nickel(0) with CH3I is the expected oxidative addition of the halide to the metal substrate. The intermediate thus formed decomposes to produce ethane (and small amounts of methane) without further reaction with the organic halide. This mechanism is supported by deuterium-labeling experiments.  相似文献   

6.
Relative rates of dioxygen uptake by the complexes trans-Ir(CO)X(PPh2R)2 (R = Ph, Me, Et; X = F, Cl, Br, I) have been measured in dichloromethane and found to follow the order R = Ph<Et<Me and X = F <Cl<Br<I. The basicity of these trans-Ir(CO)X(L)2 complexes, as measured by their affinity for dioxygen, is not reflected in the energy of the ν(CO) absorption in the parent compounds; a previous report that complex basicity ∝1/ν(CO) does not hold for the complexes reported here.  相似文献   

7.
The thermal decomposition of the complexes trans-[Pt(X)(CH3)L2] (L  P(C2H5)3; X  Cl, Br, I, CN) in decalin at 170 and 200°C affords methane platinum metal and [Pt(X)2L2]. The kinetics of the decomposition of the complexes were determined by monitoring the appearance of methane by GLC. The observed first-order rate constant was found to be independent on the nature of the ligand X. The thermal decomposition of the trideuteriomethyl complexes [Pt(X)(CD3)L2] (X  I, CN) in decalin-d18 at 170 and 200°C was studied by GLC/MS. The thermolysis affords CD3H and CD4 in ratios which are independent of the nature of X and of the temperature used. The mass spectra of the complexes were also examined. A relative scale of platinum-to-methyl bond dissociation energies has been established by measuring the appearance potential of the fragment ion [Pt(X)L2]+ and the ionization energies in the series [Pt(X)(CH3)L2]. Ionization potentials and PtCH3 bond energies show a clear dependence on the nature of X which is not reflected in corresponding changes in the decomposition rates.  相似文献   

8.
A method for the preparation of (C6H5)nPX3-nCr(CO)5 complexes in the crystalline state is described. The carbon-oxygen stretching vibration, vCO(A, eq.), of the complexes with X = Cl, Br, I is mainly determined by the inductive effect of the (C6H5)nPX3-n group. For X = H, the vCO band is defined by the concomitant influence of the σ, π and steric effects.  相似文献   

9.
The complex mer-trans-[Mn(CO)3{P(OMe)2Ph}2X] (X = Cl, Br) is an intermediate in the conversion of fac-[Mn(CO)3{P(OMe)2,Ph}2,X] into mer- cis-[Mn(CO)2{P(OMe)2Ph}3X] in the presence of P(OMe)2Ph in benzene. No direct route between the latter two complexes could be detected kinetically. The results imply a trans carbonyl disposition as a prerequisite for higher carbonyl substitution in octahedral Mn1 carbonyl complexes.  相似文献   

10.
Treatment of N-(2-chlorobenzylidene)-N,N-dimethyl-1,3-propanediamine (1) and N-(2-bromo-3,4-(MeO)2-benzylidene)-N,N-dimethyl-1,3-propanediamine (20) with tris(dibenzylideneacetone)dipalladium(0) in toluene gave the mononuclear cyclometallated complexes [Pd{C6H4C(H)=NCH2CH2CH2NMe2}(Cl)] (2) and [Pd{3,4-(MeO)2C6H2C(H)=NCH2CH2CH2NMe2}(Br)] (21), respectively, via oxidative addition reaction with the ligand as a C,N,N terdentate ligand. Reaction of 2 with sodium bromide or iodide in an acetone–water mixture gave the cyclometallated analogues of 2, [Pd{C6H4C(H)=NCH2CH2CH2NMe2}(Br)] (3) and [Pd{C6H4C(H)=NCH2CH2CH2NMe2}(I)] (4), by halogen exchange. The X-ray crystal structures of 2, 3 and 4 were determined and discussed. Treatment of 2, 3, 4 and 21 with tertiary monophosphines in acetone gave the mononuclear cyclometallated complexes [Pd{C6H4C(H)=NCH2CH2CH2NMe2}(L)(X)] (6: L=PPh3, X=Cl; 7: L=PPh3, X=Br; 8: L=PPh3, X=I; 9: L=PMePh2, X=Cl; 10: L=PMe2Ph, X=Cl) and [Pd{3,4-(MeO)2C6H2C(H)=NCH2CH2CH2NMe2}(L)(Br)] (22: L=PPh3; 23: L=PMePh2; 24: L=PMe2Ph). A fluxional behaviour due to an uncoordinated CH2CH2CH2NMe2 could be determined by variable temperature NMR spectroscopy. Treatment of 2, 3 and 4 with silver trifluoromethanesulfonate followed by reaction with triphenylphosphine gave the mononuclear complex [Pd{C6H4C(H)=NCH2CH2CH2NMe2}(PPh3)][F3CSO3] (11) where the Pd–NMe2 bond was retained. Reaction of 2, 3 and 4 with ditertiary diphosphines in a cyclometallated complex–diphosphine 2:1 molar ratio gave the binuclear complexes [{Pd[C6H4C(H)=NCH2CH2CH2NMe2](X)}2(μ-L–L)][L–L=PPh2(CH2)4PPh2(dppb) (13, X=Cl; 14, X=Br; 15, X=I; L–L=PPh2(CH2)5PPh2(dpppe): 16, X=Cl; 17, X=Br; 18, X=I) with palladium–NMe2 bond cleavage. Treatment of 2, 3 and 4 with ditertiary diphosphines, in a cyclometallated complex–diphosphine 2:1, molar ratio and AgSO3CF3 gave the binuclear cyclometallated complexes [{Pd[C6H4C(H)=NCH2CH2CH2NMe2]}2(μ-L–L)][F3CSO3]2 (11: L–L=PPh2(CH2)4PPh2(dppb), X=Cl; 12: L–L=PPh2(CH2)5PPh2 (dpppe), X=Cl). Reaction of 2 with the ditertiary diphosphine cis-dppe in a cyclometallated complex–diphosphine 1:1 molar ratio followed by treatment with sodium perchlorate gave the mononuclear cyclometallated complex [Pd{C6H4C(H)=NCH2CH2CH2NMe2}(cis-PPh2CH=CHPPh2–P,P)][ClO4] (19).  相似文献   

11.
Mono-cyclopentadienyl complexes CpVX2(PR3)2 and Cp′VX2 (PR3)2 (Cp = η5- C5H5; Cp′ = η5-C5H4Me; R = Me, Et; X = Cl, Br) have been prepared by reaction of VX3(PR3)2 with CpM (M = Na, T1, SnBun3, 1/2 Mg) or Cp′Na. Attempts to prepare analogous complexes with other phosphine ligands, PPh3, PPh2 Me, PPhMe2, Pcy3, DMPE and DPPE failed. Reduction of CpVCl2(PEt3)2 with zinc or aluminium under CO (1 bar) offers a simple method for the preparation of CpV(CO)3(PEt3). The crystal structure of the trimethylphosphine complex CpVCl2(PMe3)2 is reported.  相似文献   

12.
The thermolysis of the complexes [Co(NH3)6]2C2O4[Cu(C2O4)2]2 (I) and [Co(NH3)6]Cl[Cu(C7H4O3)2] (II) in air and hydrogen at 200, 350, and 500°C and the composition and properties of the thermolysis products are considered. The oxidative thermolysis of the complexes yields mixtures of cobalt and copper oxides, including mixed ones. The reductive thermolysis of the complexes yields a Co + Cu bimetallic powder in the case of compound I and a Co + Cu + C powder in the case of compound II. The thermal behavior of the complexes is governed by the nature of the ligand coordinated to the copper atom. The observed data are explicable in terms of the properties of this ligand. The chemistry of the oxidative and reductive thermolysis is discussed. Original Russian Text ? D.P. Domonov, S.I. Pechenyuk, N.L. Mikhailova, A.T. Belyaevskii, 2007, published in Zhurnal Neorganicheskoi Khimii, 2007, Vol. 52, No. 7, pp. 1104–1110.  相似文献   

13.
Reaction of [MX(CO)2(η7-C7H7)] (M=Mo, X=Br; M=W, X=I) with two equivalents of CNBut in toluene affords the trihapto-bonded cycloheptatrienyl complexes [MX(CO)2(CNBut)2(η3-C7H7)] (1, M=Mo, X=Br; 2, M=W, X=I). The X-ray crystal structure of 2 reveals a pseudo-octahedral molecular geometry with an asymmetric ligand arrangement at tungsten in which one CNBut is located trans to the η3-C7H7 ring. Treatment of 2 with tetracyanoethene results in 1,4-cycloaddition at the η3-C7H7 ring to give [WI(CO)2(CNBut)2{η3-C9H7(CN)4}], 3. The principal reaction type of the molybdenum complex 1 is loss of carbonyl and bromide ligands to afford substituted products [MoBr(CNBut)2(η7-C7H7)] 4 or [Mo(CO)(CNBut)2(η7-C7H7)]Br. Reaction of [MoBr(CO)2(η7-C7H7)] with one equivalent of CNBut in toluene at 60°C affords [MoBr(CO)(CNBut)(η7-C7H7)], 5, which is a precursor to [Mo(CO)(CNBut)(NCMe)(η7-C7H7)][BF4], 6, by reaction with Ag[BF4] in acetonitrile. In contrast with the parent dicarbonyl systems [MoX(CO)2(η7-C7H7)], complexes of the Mo(CO)(CNBut)(η7-C7H7) auxiliary, 5 and 6, do not afford observable η3-C7H7 products by ligand addition at the molybdenum centre.  相似文献   

14.
Heteronuclear Metal Atom Clusters of the Types X4?n[SnM(CO)4P(C6H5)3]n and M2(CO)8[μ-Sn(X)M(CO)4P(C6H5)3]2 by Reaction of SnX2 with M2(CO)8[P(C6H5)3]2 (X = Halogene; M = Mn, Re; n = 2, 3) The compounds of the both types X4?n[SnM(CO)4P(C6H5)3]n (n = 3; M = Mn; X = F, Cl, Br, I. n = 2: M = Mn, Re; X = Cl, Br, I) and M2(CO)8[μ-Sn(X)M(CO)4P(C6H5)3]2 (M = Mn; X = Cl, I. M = Re; X = Cl, Br, I) are prepared by reaction of SnX2 with M2(CO)8[P(C6H5)3]2 (M = Mn, Re). Their IR frequencies are assigned. In Re2(CO)8[μ-Sn(Cl)Re(CO)4P(C6H5)3]2 the central molecule fragment contains a planar Re2Sn2 rhombus with a transannular Re? Re bond of 316.0(2) pm. Each of the SnIV atoms is connected with the terminal ligands Cl and Re(CO)4P(C6H5)3. These ligands are in transposition with respect to the Re2Sn2 ring. The mean values for the remaining bond distances (pm) are: Sn? Re = 274.0(3); Sn? Cl = 243(1), Re? C = 176(5), Re? P = 242.4(9), C? O = 123(5). The factors with an influence on the geometrical shape of such M2Sn2 rings (M = transition metal) are discussed.  相似文献   

15.
A series of 2,4-dinitrophenyl 4-Y-phenyl disulfides (Y=NO2, Br, F, H, CH3, or CH3O) have been shown to react with trans-IrX(CO)(PPh3)2 (X=Cl, Br, or I) in refluxing benzene to form “oxidative-elimination” products of the type, [IrX(SC6h4Y)(SC6H3(NO2)2)(CO)(PPh3)]2. The physical properties of these complexes are discussed in relation to their structure in the solid state and in solution. In particular, available infrared spectral data indicate that these complexes contain 2,4-dinitrobenzenethiolato bridging groups and that the substituted arenethiolato ligand is trans to carbon monoxide.  相似文献   

16.
It is shown that alkynes, such as CF3C≡CCF3 and CH3OOCC≡CCOOCH3, which contain strongly electron-attracting groups, undergo insertion into the metal-metal bond of [FeX(CO)3]2 complexes (X = SCH3, SC6H5, P(CH3)2) under UV irradiation. The reactions of the products with trimethylphosphine are also described.  相似文献   

17.
The thermolysis of the palladium complexes [PdX(Me){P(C2H5)3}2] (X = Br, I, CN; Me = CH3, CD3) in decalin or toluene under argon, in the temperature range 120–160°C, produces methane, ethane and ethylene, in ratios which vary with the temperature. Deuterium labelling shows that the methane is mainly formed through intramolecular abstraction of hydrogen from the phosphine ligands by the coordinated methyl group and not through homolytic fission of the PdMe bond. The thermal stability and the decomposition mechanisms of the organopalladium complexes are compared with those of the platinum analogues, which are remarkably more stable. At the higher temperatures, the thermal decomposition involves cleavage of the PEt bonds in the phosphine ligands, and this leads to the formation of ethane and ethylene. The rate of generation of methane from the PdMe moieties is increased by a factor of 10 by the presence of an excess of dioxygen. Deuterium isotopic labelling shows that the rate increase is accompanied by a change from an intramolecular to a radical mechanism involving the abstraction of hydrogen by the methyl groups.  相似文献   

18.
M(CO)5X (M = Mn, Re; X = Cl, Br, I) reacts with DAB (1,4-diazabutadiene = R1N=C(R2)C(R2)′=NR′1) to give M(CO)3X(DAB). The 1H, 13C NMR and IR spectra indicate that the facial isomer is formed exclusively. A comparison of the 13C NMR spectra of M(CO)3X(DAB) (M = Mn, Re; X = Cl, Br, I; DAB = glyoxalbis-t-butylimine, glyoxyalbisisopropylimine) and the related M(CO)4DAB complexes (M = Cr, Mo, W) with Fe(CO)3DAB complexes shows that the charge density on the ligands is comparable in both types of d6 metal complexes but is slightly different in the Fe-d8 complexes. The effect of the DAB substituents on the carbonyl stretching frequencies is in agreement with the A′(cis) > A″ (cis) > A′(trans) band ordering.Mn(CO)3Cl(t-BuNCHCHNt-Bu) reacts with AgBF4 under a CO atmosphere yielding [Mn(CO)4(t-BuNCHCHN-t-Bu)]BF4. The cationic complex is isoelectronic with M(CO)4(t-BuNCHCHNt-Bu) (M = Cr, Mo, W).  相似文献   

19.
The 1 : 2 trimethylphosphine (deuterated and non-deuterated) adducts of the Group V trihalides MX3 (where M = P or As and X = Cl or Br) are prepared and examined by vibrational spectroscopy. The forced cis-configuration complexes MX3 · bdpe where bdpe is the bidentate ligand 1,2-bisdimethylphosphinoethane are also prepared and examined spectroscopically. Comparison of the Raman and IR spectra of these complexes shows the monodentate adducts to be covalent monomers having a trans-stereochemistry in the solid state. Normal coordinate calculations in C2v symmetry (trans-stereochemistry) are performed for all monodentate adducts reported.  相似文献   

20.
《Polyhedron》1999,18(23):3031-3034
The complex [Ir(CO)2X2][NBu4] (X=Cl, Br) forms Vaska-type complexes, trans-[Ir(ER3)2(CO)X], when treated with two equivalents of aryl- or alkyl-phosphines, arsines, or stibines under a CO atmosphere. The synthesis is general for a wide range of phosphines, arsines, or stibines irrespective of the cone angle. For small cone-angle ligands, the initial addition of ligand to [Ir(CO)2X2][NBu4] is performed at low temperature. The synthesis and characterisation of three new Vaska-type complexes trans-[Ir(P(OMe)3)2(CO)Cl], trans-[Ir(AsMe3)2(CO)Cl], and trans-[Ir(AsEt3)2(CO)Cl] is also reported.  相似文献   

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