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1.
The organocobalt complexes [CoR2L2], with (a) L = PEtPh2 and R = 2,3,5,6- C6HCl4, 2,4,6-C6H2Cl3 and 2,6-C6H3Cl2; and (b) R = 2,4,6-C6H2Cl3 and L = PEt3, PEt2Ph, 12 dpe, 3,5-lut and 12 bipy, have been obtained by reaction of RMgX with [CoCl2L2] or by ligand exchange from [CoR2(PEtPh2)2]. The decompositions in benzene and carbon tetrachloride, and under oxidative conditions have been studied. In benzene solutions, the stability decreases with decrease in the number of chlorine atoms in R. A mixture of RH and RR is obtained in a ratio which depends on the nature of L, the configuration of the complex, and the presence of oxidants. The thermal decomposition takes place through a tricoordinate intermediate “CoR2L”, when L = phosphine, or directly from [CoR2L2] when L = amine. The oxidatively induced decomposition takes place through a cobalt(III) intermediate, which gives RR when L = phosphine or RX (X = H, Br) when L = amine. The process is intramolecular in all cases.  相似文献   

2.
X-Ray photoelectron spectroscopy has been applied to study MH4L4(M = or Mo, L = PHPh2, PMePh2, PEtPh2, PBuPh2, PEt2Ph, P(OPr-i)3 or 12 dppe). It has been shown that tungsten in these compounds has a negative charge whereas the charge of molybdenum is almost zero.  相似文献   

3.
Reaction of the 16 electron monomer [Co(η5-C5H5)(S2C2{CN}2)] with various tertiary phosphines and phosphites (L) gives readily the 18 electron monomers [Co(η5-C5H5)(S2C2{CN}2)L] which for L = P(OR)3 have J(PC5H5) ca. 6 Hz but J(PC5H5) = 0 for L = PR3.  相似文献   

4.
The compounds [(PPh3)2,RPtHgR′] (R = CH3, R′= 2,5-C6H3Cl2, 2,3,4- and 2,4,6-C6H2Cl3, 2,3,4,5-, 2,3,4,6- and 2,3,5,6-C6HCl4, C6Cl5; R = Et, R′ = 2,5-C6H3Cl2, 2,4,6-C6H2Cl3; R = 2-C6H4Cl, R′=2-C6H4(CH3)) have been prepared by the reactions of RHgR′ with Pt(PPh3)3, in order to study their possible use as intermediates in the preparation of diorganoplatinum complexes with different organic ligands. The dependence of J(31P-195Pt) on slight differences in the electronic character of the ligand R′ in the series of compounds [(PPh3)2(CH3)Pt-HgR′] has been studied.  相似文献   

5.
The heterocycle [(h5-C5H5)NiSP(CH3)2]2 is obtained by treatment of (h5-C5H5)2Ni with (CH3)2HPS in toluene and crystallizes monoclinic in the space group P21/c with Z = 2. The highly reactive three-membered ring (h5-C5H5)NiSP(CH3)2 which is a dissociation product of [(h5-C5H5)NiSP(CH3)2]2, can be trapped with bis(methoxycarbonyl)acetylene to give the PS containing nickelacyclopentadiene (h5-C5H5)NiSP(CH3)2CRCR (R  CO2CH3).  相似文献   

6.
The kinetics of the reaction of cis-[PdCl2(CN-p-C6H4Cl)(PPh3)] with N-methylaniline yielding the carbene derivative cis-[PdCl2 {C(NH-p-C6H4Cl)NMePh} (PPh3)] have been studied in various solvents such as acetone, 1, 4-dioxane, 1,2-dichloroethane, and benzene. Overall rates for the stepwise process increase with decreasing ability of the solvent to form hydrogen bonds with the attacking amine. A kinetic study is also reported for the reactions of N-methylaniline with cis- [PdCl2(CN-p-C6H4Me)(L)] in 1,2-dichloroethane (L = P(OMe)3, P(OMe)2Ph, PPh3. PMePh2, PMe2Ph, PEt3, PCy3). The cis ligand L affects reaction rates through both steric and electronic factors. The nucleophilic attack of the amine on the CN carbon atom of coordinated isocyanide is favoured by low steric requirements and high π-acceptor ability of L. The activation parameters for the bimolecular nucleophilic attack when L = PPh3 are △H2 = 9.8 ± 0.7 kcal/mol and △S2 = — 30 ± 2 e.u.  相似文献   

7.
Bis(cycloocta-1,5-diene)platinum reacts with 2,3,4,5-tetraphenylfulvene to afford the complex [Pt(η2-CH2C5Ph4)(cod)] (cod  C8H12) in which the metal atom is coordinated to the exo-cyclic double bond of the fulvene. Related compounds [Pt(η2-CH2C5Ph4L2] (L  PPh3, PMePh2, PMe2Ph, AsPh3 or CNBut have also been prepared and characterised. Reaction of the complexes [Pt(C2H4)2(L)] (L  P(cyclo-C6H11)3, PPh3 or AsPh3) with 2,3,4,5-tetraphenylfulvene yields the compounds [Pt(C2H4)(η2-CH2C5PH4)(L)]. NMR data for the new species are reported and discussed. 6,6-Diphenylfulvene reacts with [Pt(cod)2] and PPh3 (12 mol ratio) to give the complex [Pt(η2-C5H4CPh2)-(PPh3)2] in which the metal atom is bonded to carbon atoms C(2) and C(3) of the fulvene ring. This was established by an X-ray diffraction study. Crystals are monoclinic, space group P21/n, with Z  4 in a unit cell of dimensions a  13.761(4), b  21.653(13), c  17.395(6) Å, β,  104.46(2)°. The structure has been solved and refined to R  0.064 (R′  0.064) for 3139 independent diffracted intensifies measured at room temperature. The platinum atom is in a trigonal environment formed by the two ligated phosphorus atoms and the CC bond of the fulvene which is elongated to 1.52(3) Å. The c5 fulvene ring is planar, and makes an angle of 108° with the coordination plane around the platinum. In this plane the metal atom is slightly asymmetrically bonded with PtC 2.15(2) and 2.24(2) Å, and PtP 2.280(6) and 2.301(6) Å.  相似文献   

8.
9.
FeIIFeIII2F8(H2O)2 and MnFe2F8(H2O)2, grown by hydrothermal synthesis (P ? 200 MPa, T = 450 or 380°C), crystallize in the monoclinic system with cell dimensions (Å): a = 7.609(5), b = 7.514(6), c = 7.453(4), β = 118.21(3)°; and a = 7.589(6), b = 7.503(8), c = 7.449(5), β = 118.06(3)°, and space group C2m, Z = 2. The structure is related to that of WO3 · 13H2O. It is described in terms of perovskite type layers of Fe3+ octahedra separated by Fe2+ or Mn2+ octahedra, or in terms of shifted hexagonal bronze type layers. Both compounds present a weak ferromagnetism below TN (157 and 156 K, respectively). Mössbauer spectroscopy points to an “idle spin” behavior for FeIIFeIII2F8(H2O)2: only Fe3+ spins order at TN, while the Fe2+ spins remain paramagnetic between 157 and 35 K. Below 35 K, the hyperfine magnetic field at the Fe2+ nuclei is very weak: Hhf = 47 kOe at T = 4.2 K. For MnFe2F8(H2O)2, Mn2+ spin disorder is expected at 4.2 K. This “idle spin” behavior is due to magnetic frustration.  相似文献   

10.
Oxidation of the complexes trans-[M(CNR)2(dppe)2] (A) (M = Mo or W; R = Me, But or CH3C6H4-4; dppe = Ph2PCH2CH2PPh2) with diiodine or silver (I) salts gives the paramagnetic cations trans-[M(CNR)2(dppe)2]+, (M = Mo, R = CH3C6H4-4; M = W, R = But) and trans-[M(CNR)2(dppe)2]2+ (M = Mo, R = Me or CH3C6H4-4; M = W, R = Me or But). Mixtures of products are generally produced when dichlorine or dibromine are the oxidising agents, however pure salts, the seven-coordinate complex cations [MX(CNC6H4CH3-4)2(dppe)2]+ (B, X = Cl or Br) have been isolated. A simple molecular orbital scheme is proposed for complexes (A) and used to discuss their electronic spectra and their oxidation.  相似文献   

11.
The dark red octahydride complex of dirhenium, Re2H8(PPh3)4, undergoes a reversible one-electron oxidation to the blue mono-cation [Re2H8(PPh3)4]+ (Ebuit;12 ?0.24 V vs. SCE by cyclic voltammetry). The X-band ESR spectrum of a dichloromethane glass (?160°C) containing the monocation is in accord with the HOMO being a delocalized metal-based orbital. Treatment of the heptahydrides ReH7(PR3)2 (PR3 = PPh3 or PEtPh2) with C6H11NC or Me3CNC in the presence of KPF6 leads to the elimination of hydrogen and the formation of [Re(CNR)4(PR3)2]PF6. Electrochemical oxidation of ReH5(PPh3)2L (L = PPh3, PEt2Ph, pyridine, piperidine or cyclohexylamine) activities these molecules to attack by RNC to afford rhenium(I) species  相似文献   

12.
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   

13.
Methyl- or phenylN-carboxamido-complexes of platinum(II) Pt(NHCOR')RL2 (L = PEt3, R = Me, R′ = Me, CH = CH2; L = PEt3, R = Ph, R′ = Me; L = PMe2Ph, R = Ph, R′ = Me, Ph; L = PMePh2, R = Ph, R′ =3, R = Ph, R′ = Me) have been prepared by the reaction of KOH with cationic nitrile complexes [PtR(NCR′)L2]BF4. Thermally unstable hydrido-N-carboxamido-complexes could be detected spectroscopically. IR and NMR (1H, 31P) spectra of some of the complexes indicate the existence of a solvent- and temperature-dependent equilibrium between syn-and anti-isomers arising from restricted rotation about the NC bond of the carboxamido-group. The anti-isomer is favoured by nonpolar solvents and by increasing bulk of L. In the complex [PtH(NCCH CH2)(PEt3)2]BF4, IR and NMR spectra show acrlonitrile to be bound through nitrogen, not through the olefinic CC bond.  相似文献   

14.
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   

15.
Although very bulky ligands e.g.(o-MeC6H4)3E or (μ-C10H7)3E (E = P or As) are inert, the normal photochemical or thermal reaction of tertiary phosphines or arsines, L, with [Mn2(CO)10] is CO substitution with the formation of [Mn2(CO)8(L)2] derivatives (I). At elevated temperatures some triarylarsines, R3As, undergo Lambert's reaction with ligand fragmentation to give [Mn2(CO)8(μ-AsR2)2] complexes (II) (R = Ph, p-MeOC6H4, p-FC6H4, or p-CIC6H4) even though, in the absence of [Mn2(CO)10] R3As are stable under the same conditions. Exceptional behaviour is exhibited by (p-Me2NC6H4)3- As which forms a product of type I; by some HN(C6H4)2AsR which give a product of type II as a result of loss of the non-aryl groups R = PhCH2, cyclo-C6H11, or MeO; and by Ph(α-C10H72P which is the only phosphine to form a product of type II, albeit in trace amounts only. The thermal decomposition of a n-butanol solution of [Mn2(CO)8(AsPh3)2] in a sealed tube gives C6H6 and [Mn2(CO)8(α-AsPh2)2], whilst in an open system in the presence of various tertiary phosphines, L, [Mn(H)(CO)3(L)2] are obtained. It is suggested that Lambert's reaction is a thermal fragmentation of [Mn(CO)4(AsR3]* radicals, the first to be recognised. They lose the radical R* which abstracts hydrogen from the solvent. The resulting [Mn(CO)4(AsR2)] moiety dimerises to [Mn2(CO)8-(α-AsR2)2]. the reaction is facilitated by the stability of the departing radical (e.g. PhCH2 or MeO) and, as the crowding about As is relieved, by its size (e.g. Ph, cyclo-C6H11, o-MeC6H4, or α-C10H7). In general, phosphine-substituted radicals [Mn(CO)4(PR)3]* do not undergo this decomposition, probably because the PC bonds are much stronger than AsC.  相似文献   

16.
The cyclometallation of p-RC6H4CHNCH2C6H2, (R = H, Cl, NO2) by PdX2 (X = Cl, AcO) has been studied.In every case the cyclometallation occurs with formation of a five-membered ring containing the methine group. The structure of these compounds [PdX(p-RC6H3CHNCH2C6H5)]2, derived from 1H NMR spectra, are different from those reported previously. Reaction of these compounds with PEt3 gives the compounds [PdX(p-RC6H3CHNCH2C6H5)(PEt3)2] but with an excess of PPh3 only the complexes [PdX(p-RC6H3CHNCH2C6H5)(PPh3)] are formed.  相似文献   

17.
Reaction of closo-1,5-C2B3H5 with Cl2 under reduced temperatures in an inert solvent gives 2-Cl-1,5-C2B3H4. Using a hot/cold reactor a mixture of BMe3 and 1,5-C2B3H5 is converted to a combination of B-mono-, di-, and tri-methyl derivatives of this smallest closo carborane. In addition, B-mono-, di-, tri-, and tetramethyl derivatives of 2,2-?C2B3H4C2B3H4, as well as the parent dimer, are produced.  相似文献   

18.
The complex [NiCl2(PMe3)2] reacts with one equivalent of mg(CH2CMe3)Cl to yield the monoalkyl derivative trans-[Ni(CH2CMe3)Cl(PMe3)2], which can be carbonylated at room temperature and pressure to afford the acyl [Ni(COCH2CMe3)Cl(PMe3)2]. Other related alkyl and acyl complexes of composition [Ni(R)(NCS)(PMe3)2] (R = CH2CMe3, COCH2CMe3) and [Ni(R)(η-C5H5)L] (L = PMe3, R = CH2CMe3, COCH2CMe3; L = PPh3, R = CH2CMe2Ph) have been similarly prepared. Dialkyl derivatives [NiR2(dmpe)] (R = CH2SiMe3, CH2CMe2Ph; dmpe = 1,2-bis(dimethylphosphine)ethane, Me2PCH2 CH2PMe2) have been obtained by phosphine replacement of the labile pyridine and NNN′N′-tetramethylethylenediamine ligands in the corresponding [Ni(CH2SiMe3)2(py)2] and [Ni(CH2CMe2Ph)2(tmen)] complexes. A single-crystal X-ray determination carried out on the previously reported trimethylphosphine derivative [Ni(CH2SiMe3)2(PMe3)2] shows the complex belongs to the orthorhombic space group Pbcn, with a = 14.345(4), b = 12.656(3), c = 12.815(3) Å, Z = 4 and R 0.077 for 535 independent observed reflections. The phosphine ligands occupy mutually trans positions P-Ni-P 146.9(3)° in a distorted square-planar arrangement.  相似文献   

19.
The structure of the dimeric complex [(bipy)Ni(MEA)]2 · H2O (MEA = 2-methylpent-2-enal (α-methyl-β-ethylacrolein)) was determined by X-ray structural analysis (space group P1, a 10.843(4), b 9.650(3), c 17.116(2) Å, Z = 4, R = 0.05). The MEA ligand is not exclusively coordinated through the olefinic group, but there is however, interaction with the C atom of the neighbouring CO group (NiC distances 2.28 and 2.40 Å in both symmetrically independent molecules). The true bonding situation can be described as in between purely olefinic and purely π-allylic. Two molecules of (bipy)Ni(MEA) are connected by a molecule of water, which bonds asymmetrically to the two oxygen atoms of both aldehyde groups. The compound described is apparently the first example of an organonickel compound with bound water. The compound's importance for complex catalysed aldol condensations is discussed.  相似文献   

20.
The novel complexes L2Pt(CH2CMe2Ph)2 [L2 = 1,5-cod, 2,2′-bipy, 2,2′-bipym; L = PEt3, PPh3] readily undergo cyclisations to afford L2Pt(2-C6H4CMe2CH2) with elimination of tert-butylbenzene at rates dependent on L2; reaction is fastest for the bulky monodentate Ph3P, while chelating ligands generally decrease lability.  相似文献   

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