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1.
A series of square-planar organocobalt complexes of the type [CoR2L2] (R = 2,3,4,6-C6,HCl4 and 2,3,6-C6H2Cl3, L = PEtPh2, PEt2Ph, and PEt3; R = 2,3,5,6-C6HCl4, and 2,6-C6H3Cl2, L = PEt2Ph, PEt3, and 12dpe) have been prepared in which the electronegativities of the ligand R vary progressively. The reaction of o-C6H4ClMgBr with [CoCl2L2] (L = PEtPh2 PEt2Ph, γ-pic or 12bipy) did not give air stable compounds at room temperature, but the solutions obtained at ?78°C appear to contain square-planar species for L = PEtPh2, PEt2Ph, and γ-pic, and tetrahedral for L2 = bipy. The tendency towards square-planar or tetrahedral structures for the compounds [CoR2L2] depends on the following factors in order of importance: (i) when the neutral ligand is a phosphine a square-planar structure is adopted; (ii) when L is an aromatic amine, bulky ortho substituents on R favour a square-planar structure; and (iii) a tetrahedral geometry is favoured by bidentate amine ligands. The electronegativity of the organic group R seems to be less important.  相似文献   

2.
The reactions of [M2Cl2(μ-Cl)2(PMe2Ph)2] with mercapto-o-carboranes in the presence of pyridine afforded mono-nuclear complexes of composition, [MCl(SCb°R)(py)(PMe2Ph)] (M = Pd or Pt; Cb° = o-C2B10H10; R = H or Ph). The treatment of [PdCl2(PEt3)2] with PhCb°SH yielded trans-[Pd(SCb°Ph)2(PEt3)2] (4) which when left in solution in the presence of pyridine gave another substitution product, [Pd(SCb°Ph)2(py)(PEt3)] (5). The structures of [PdCl(SCb°Ph)(py)(PMe2Ph)] (1), [Pd(SCb°Ph)2(PEt3)2] (4) and [Pd(SCboPh)2(py)(PEt3)] (5) were established unambiguously by X-ray crystallography. The palladium atom in these complexes adopts a distorted square-planar configuration with neutral donor atoms occupying the trans positions. Thermolysis of [PdCl(SCb°)(py)(PMe2Ph)] (2) in TOPO (trioctylphosphine oxide) at 200 °C gave nanocrystals of TOPO capped Pd4S which were characterized by XRD pattern and SEM.  相似文献   

3.
Several isomers of the type [M2Cl5L4] (M = Ru, L = AsPh3, As(p-tol)3, As(p-PhCl)3, PEt2Ph, PMe2Ph; L2 = Ph2As(CH2)2AsPh2; M = Os, L = PPh3, AsPh3) have been synthesised by various routes and characterised by magnetic, ESR and electrochemical measurements, and for [(PEt2Ph)Cl2RuCl3Ru(PEt2Ph)3] by X-ray structural analysis.  相似文献   

4.
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   

5.
The thermal properties of a series of the six copper selenide cluster molecules [Cu26Se13(PEt2R)14] (R = Ph, Et), [Cu44Se22(PEt2Ph)18], [Cu70Se35(PEt2R)23] (R = Ph, Et) and [Cu140Se70(PEt3)34] have been investigated along with a characterization of their thermolysis products. For all cluster molecules the phosphine ligand shells are cleaved at temperatures between 60°C and 200°C depending on the experimental conditions (Helium gas flow or vacuum), the type of phosphine ligand and the size of the cluster molecules. The residues of the thermal treatment to 150°C were found to be nanostructured Cu2Se with crystallite sizes of approximately 12–16 nm which means that the 1–2.5 nm sized cluster cores of the precursor cluster molecules simultaneously grow during this process. A mixture of processes and factors including the strength of the Cu–P bond, the boiling point of the phosphine ligand as well as the thermal stability of the copper selenide clusters against formation of the bulk material determine the shape of the TGA curves. We found some indications in the TGA along with differential scanning calorimetry (DSC), which suggest that the cleavage of the phosphine ligands is probably mostly determined by the tendency of the metastable clusters to form the bulk material meaning their thermodynamic stability and not by the strength of the Cu–P bond. The data for the series of PEt3 ligated clusters reveal that this stability is dependent on the size of the cluster molecules. Dedicated to Prof. G. Schmid on the occasion of his 70th birthday.  相似文献   

6.
The mono-hydrido-bridged complexes (PEt3)2(Ar)Pt(μ2-H)Pt(Ar)(PEt3)2]-[BPh4] (Ar = Ph, 4-MeC6H4 and 2,4-Me2C6H3) have been obtained by treating trans-[Pt(Ar)(MeOH)(PEt3)2][BF4] with sodium formate and Na[BPH4]. The cations [PEt3)2(Ar)Pt(μ2-H)Pt(Arb')(PEt3)2]b+ (Ar = Ph and Arb' - 2,4-Me2C6H3 and 2,4,6-Me3C6H2 have bee identified in solution. Their b1H- and b31P-NMR data are reported. The X-ray crystal structure of [(PEt3)2(Ph)Pt(μ2-H)Pt(Ph)(PEt3)2][BPh4] is reported.  相似文献   

7.
[RhH(CO)(PPh3)2] (1) reacts with Et3N·3HF to give the fluoro compound [RhF(CO)(PPh3)2] (2). In a comparable reaction [RhF(PEt3)3] (5) has been obtained from [RhH(PEt3)3] (3) or [RhH(PEt3)4] (4) with substoichiometric amounts of Et3N·3HF in THF. If the latter reaction is carried out in benzene, the complexes 5, cis-mer-[Rh(H)2F(PEt3)3] (6) and cis-fac-[Rh(H)2F(PEt3)3] (7) are obtained. Treatment of 5 with HCl in ether effects the generation of [RhCl(PEt3)3] (8) and the bifluoride compound [Rh(FHF)(PEt3)3] (9), which can be converted into 5 in the presence of Et3N and Cs2CO3. Treatment of 5 with HSiR2Ph (R=Ph, Me) leads to the formation of 3 and the rhodium(III) silyl complexes fac-[Rh(H)2(SiR2Ph)(PEt3)3] (10: R=Ph, 11: R=Me).  相似文献   

8.
13C NMR data are given for a series of phosphinenickel(0) complexes of ethyl methacrylate (ema), Ni(PR3)2(CH2=C(CH3)COOC2H5) (PR3 = PPh3 (Ia), PEtPh2 (Ib), PEt2Ph (Ic), PMe2Ph (Id), PEt3 (Ie)). The olefinic carbon signals of ema shift upfield by 71.5–86.5 ppm on coordination, the magnitude of the upfield shift increasing with increase in the bacisity of the phosphine ligand. The effect of the basicity of PR3 is discussed on the basis of the back-bonding from Ni to ema. Variable temperature1H NMR studies reveal that the ema of Id, the complex having the least sterically demanding phosphine ligands, exchanges with free ema in toluene on the NMR time scale. The dependence of the rate of exchange on the concentration of ema shows that the exchange proceeds through anSN2 mechanism. The activation parameters are: ΔH273 2.75 kcal/mol, ΔG273 12.7 kcal/mol, ΔS273 ?37 e.u. The31P NMR spectra of the complexes show two doublets when the exchange is frozen out, indicating the inequivalence of the two phosphine ligands in the ema-coordinated complex. The difference in the31P chemical shifts of the two coordinated tertiary phosphines increases with increase in the basicity of the PR3 ligand.  相似文献   

9.
The rhodium(I) complex [Rh(CO)(PEt3)(mnt)]? (mnt = maleonitriledithiolate) reacts with a variety of alkyl halides to form acyl complexes isolated in the presence of excess PEt3 as five-coordinate species of formula [Rh(COR)(PEt3)2(mnt)]. The structure of the complex for R = n-Pr has been determined by an X-ray analysis, and is found to be a square-based pyramid with the acyl group in the apical position. Addition of HClO4 to the rhodium(I) anion in the presence of excess PEt3 yields rhodium(III) hydride, [RhH(CO)(PEt3)2(mnt)], while addition of acid to the rhodium(I) complex in CH3CN solution with ethylene present leads slowly to formation of an acyl complex which is isolated as [Rh(COEt)(PEt3)2(mnt)] upon phosphine addition. A novel alkyl group migration from the acyl carbon to a donor S atom is also observed in monophosphine systems.  相似文献   

10.
The synthesis and characterization of the new, 16 electron half-open zirconocenes, Zr(C5H5)(c-C8H11)(PR3) (R = Me, Et) are reported, together with a structural study of the PEt3 complex. As with other low valent half-open zirconocenes, the Zr-C distances are significantly shorter on average for the electronically open dienyl ligand than those for the C5H5 ligand, 2.343 vs. 2.512 Å. Reaction of either of these compounds with PhC2Ph led to the incorporation of two equivalents of the alkyne, resulting in a formally 14 electron complex with coordination from cyclopentadienyl, allyl, σ-alkyl, and σ-vinyl units.  相似文献   

11.
The reactions of PhCboSeNa (Cbo = o-C2B10H10), prepared by reductive cleavage of Se-Se bond in (PhCboSe)2 by NaBH4 in methanol, with Na2PdCl4, MCl2(PR3)2 and [M2Cl2(μ-Cl)2(PR3)2] afforded a variety of complexes, viz., [Pd(SeCboPh)Cl] (1), [M(SeCboPh)2(PR3)2], [M2Cl2(μ-SeCboPh)(μ-Cl)(PR3)2] (M = Pd, Pt) and [Pd2Cl(SeCb0Ph)(μ-Cl)(μ-SeCboPh)(PEt3)2] (7) have been isolated. These complexes were characterized by elemental analyses and NMR (1H, 31P, 77Se, 195Pt) spectroscopy. The structures of [Pd(SeCboPh)2(PEt3)2] (2), [Pt(SeCboPh)2(PMe2Ph)2] (3), [Pd2Cl2(μ-SeCboPh)(μ-Cl)(PMe2Ph)2] (5) and [Pd2Cl(SeCboPh)(μ-Cl)(μ-SeCboPh)(PEt3)2] (7) were established by X-ray crystallography. The latter represents the first example of asymmetric coordination of selenolate ligands in binuclear bis chalcogenolate complexes of palladium and platinum. Thermolysis of [Pd(SeCboPh)2(PEt3)2] (2) in HDA (hexadecylamine) at 330 °C gave nano-crystals of Pd17Se15.  相似文献   

12.
The reactions of H2Os3(CO)10, Ia and H2Os3(CO)9PMe2Ph, Ib with CF3CN have been investigated. Both la and Ib react with CF3CN to give the products HOs3[μ-η2-(CF3)CNH](CO)9Land HOs3[μ-η1-NC(H)CF3](CO)9L, IIa, IIIa, L = CO; IIb and IIIb, L = PMe2Ph. IIb and IIIb have been characterized crystallographically. In each, one nitrile molecule was added to the cluster and one hydride ligand was transferred to the nitrile ligand, but in IIb the hydride was transferred to the nitrogen atom to form a CF3CNH ligand which bridges an edge of the cluster while in IIIb the hydride was transferred to the carbon atom to form a CF3(H)CN ligand which also bridges an edge of the cluster. On the basis of spectroscopic measurements IIa and IIIa are believed to have analogous structures. An isotope scrambling experiment established that the formation of Ilia occurs by an intramolecular process. IIa was decarbonylated to yield the compound HOs332-(CF3)CNH](CO)9, which is believed to contain a triply-bridging iminyl ligand. Ilia reacts with PMe2Ph to give two mono-substitution products, one of which is IIIb.  相似文献   

13.
The complex [Pt(C2H4)(PPh3)2] reacts with Pb2Ph6 to give cis-[PtPh(Pb2Ph5)(PPh3)2]; this decomposes in solution to cis-[PtPh(PbPh3)(PPh3)2], which may also be obtained from the ethylene complex and PbPh4. Lead compounds PbPhMe3 and PbPh3Br also give products of insertion into PbPh bonds, but PbMe3Cl gives cis- and trans-[PtCl(PbMe3)(PPh3)2]. The complex trans-[Pt(PbPh3)2(PEt3)2] reacts with 1,2-bis(diphenylphosphino)ethane (DPPE) to give [Pt(PbPh3)2(DPPE)] which readily decomposes in dichloromethane in presence of PEt3 to give [Pt(PbPh3)(PEt3)(DPPE)]Cl and [PtPh(PEt3)(DPPE)]Cl. The complex trans-[PtCl(PbPh3)(PEt3)2] was detected in the products of reactions between trans-[PtCl2(PEt3)2] and trans-[Pt(PbPh3)2(PEt3)2] or less than 2 moles of LiPbPh3; it was not detected in the mixture after treatment of trans -[Pt(PbPh3)2(PEt3)2] with HCl. In contrast to an earlier report, we were unable to detect lead-containing complexes in the products of the reaction between trans-[PtHCl(PPh3)2] and Ph3PbNO3. The complexes and their decomposition products were identified by pre31P-{1H} NMR spectroscopy.  相似文献   

14.
Low temperatùre (−70°C) reaction of (cod)2Rh22 (μ-Cl)2 with two molar equivalents of RLi in diethyl ether gives (cod)2Rh2 (μ-R)2 where R = Me, Me3SiCH2. Even though the bridging alkyls are air and moisture sensitive, they may be stored for prolonged periods at −30°C. The bridging alkyls are fluxional at + 20°C and the NMR spectra are consistent with a dimer of idealized D2h symmetry. Low temperature NMR spectroscopic studies suggest that the dimers have idealized C2v symmetry as found by X-ray studies described earlier. The bridging alkyls readily react with Lewis bases to give monomeric (cod)Rh(R)(L) where R = Me and L = PMe3, PEt3, P(NMe2)3, P(OMe)3, py and R = Me3SiCH2, L = P(OMe)3. The five coordinate, fluxional complex, (cod)RhMe(PMe3)2 also may be isolated. The four coordinate (cod)RhMe(PEt3), slowly reacts with toluene to give (cod)Rh(m-tolyl)(PEt3), (cod)Rh(p-tolyl)(PEt3), and methane and (cod)RhMe(PMe3) slowly reacts with benzene to give (cod)Rh(Ph)(PMe3) and methane.  相似文献   

15.
Tetramethylcyanoguanidine, NCNC(NMe2)2, reacts with pentacarbonyl-[methoxy(phenyl)carbene]chromium, (CO)5Cr[C(Ph)OMe], via substitution of the carbene ligand to give pentacarbonyl(tetramethylcyanoguanidine)chromium. X-ray structure analysis shows that the CrNCN fragment is nearly linear in the crystal, and that the CNC angle is 122.9(1)°. In solution rapid syn-anti isomerization at the NC double bond occurs. The reaction of tetramethylcyanoguanidine with pentacarbonyl[acetoxy(phenyl)carbene]-chromium and -tungsten, (CO)5M-[C(Ph)OCO(O)Me] (M = Cr, W), yields (CO)5M[C(PHNC(NMe2)2], where the acetoxy group of the carbene ligand is exchanged for the NC(NMe2)2 group of the cyanoguanidine.  相似文献   

16.
[Ir(cod)Cl]2 (cod = 1,5-cyclooctadiene) reacts with PMe2Ph in CH3CN to give the red cation [Ir(PMe2Ph)4]+. This complex in CH3CN reacts with H2 to give cis-[IrH2(PMe2Ph)4]+, but on reflux for 6 h in the absence of H2, it gives the first example of a cyclometallated PMe2Ph complex fac-[IrH(PMe2C6H4)(PMe2Ph)3]+, as shown by PMR spectroscopy and preliminary X-ray crystallographic data.  相似文献   

17.
The mixed ligand tetracarbonyl derivatives, cis-M(CO)4(PPh2H)(PPh3) (M  Cr, Mo, W) and cis-W(CO)4(PPh2H)(L) (L  PEt3, PEt2Ph, PEtPh2) have been prepared from the reaction of M(CO)5PPh2H with L in THF in the presence of potassium t-butoxide. These reactions are accompanied in most instances by the formation of [W(CO)5PPh2], [(OC)5M(μ-PPh2)M(CO)5], [(OC)5M(μ-PPh2)-M(CO)4(PPh2H)], [(OC)4M(μ-PPh2)2M(CO)4]2−, (OC)4M(μ-PPh2)2M(CO)4, and cis-M(CO)4(PPh2H)2.  相似文献   

18.
The mixed ligand complexes PtX2(ER3)L and PtXY(ER3)L (where ER3 = PR3 or AsMe3; L = phosphine, arsine; X = Cl; Y = Cl, H or Me) have been prepared and characterized. Reaction of PtMe2(ER3)L with HCl yields PtMeCl(ER3)L, in exclusively one of three possible isomeric forms. Excess tetramethyltin reacts with Pt2Cl2(μ-Cl)2(PMe2Ph)2 giving both cis and trans Pt2(μ-Cl)2(PMe2Ph)2, as identified from the NMR spectra. Cleavage of Pt2(μ-Cl)2Me2(PMe2Ph)2 with donor ligands such as AsPh3, PMe2 or pyridine, was useful as a synthetic route to the unsymmetrical methylchloro PtII derivatives. The reaction of cis-[PtMe2(PPh3)(AsPh3)] with excess dimethylacetylenedicarboxylate (DMA) yielded only one product, which was of the formula trans-[Pt{C(COOCH3)C(COOCH3)CH3}2(PPh3)(AsPh3)], with the alkenyl groups having the same geometry about the CC bond. The use of diethylacetylene-dicarboxylate (DEA) rather than DMA gave a similar product. However, when cis-[PtMe2(PEt3)(AsPh3)] was allowed to react with DMA, two products of the formula trans-[Pt{C(COOCH3)C(COOCH3)CH3}2(PEt3)(AsPh3)] were obtained, with the stereochemistry of both alkenyl groups being either cis or trans.  相似文献   

19.
The reaction of [Pt(PEt3)3] with CH2I2 affords trans-[Pt(CH2PEt3)I(PEt3)2]I and is believed to proceed via the α-functionalised alkyl cis-[Pt(CH2I)I(PEt3)2], because similar ylides are obtained from cis- or trans-[PT(CH2X)(PPh3)2X] (XCl, Br, or I) with PR3 (PEt3, PBu3n, PMePh2, PEtPh2, or PPh3); cis-[Pd(CH2I)-I(PPh3)2] does not react with excess PPh3, but with PEt3 yields trans-[Pd(CH2PEt3)I(PPh3)2]I; the X-ray structure of trans-[Pt(CH2PEt3)I(PEt3)2]I (current R = 0.045) shows PtP(1) 2.332(7), PtP(2) 2.341(8), PtC 2.08(2), and PtI 2.666(2) Å, and angles (a) C(1)PtI, P(1), P(2): 176.9(8), 91.6(6), 93.4(6), (b) IPtP(1), P(2): 87.1(2), 88.5(2), and (c) P(1)P(2), 166.8(3), and (d) PtC(1)P(3), 118(1)°.  相似文献   

20.
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   

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