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1.
The reactions of the tungsten(I) complex of picolinic acid [W(CO)3(pic)]n with certain monodentate tertiary phosphines affords a convenient route to complexes of the types W(CO)3(PR3)3 and HW(CO)2(PR3)2(pic). The latter hydrido complexes of tungsten(II) have been characterized by infrared and NMR spectroscopy. The reactions of Re2(CO)10 with picolinic acid have also been investigated and the new series of rhenium(I) derivatives of the types Re(CO)3(L)(pic), where L = py, 4-Ph-py, PPh3 or dppe, and Re(CO)2(L')2(pic), where L' = PPh3 or 12dppe, have been isolated and characterized.  相似文献   

2.
Mixed-ligand hydride ReH2(NO)L(PPh3)2 complexes [L=P(OEt)3 or PPh(OEt)2] were prepared by allowing the ReH2(NO)(PPh3)3 species to react with an excess of phosphite. Treatment of ReH2(NO)L(PPh3)2 hydrides with an equimolar amount of aryldiazonium cations ArN2+ gives the mono-aryldiazene [ReH(ArNNH)(NO)L(PPh3)2]BPh4 complexes (Ar=C6H5, 4-CH3C6H4), while treatment with an excess of ArN2+ yields bis(aryldiazene) [Re(ArNNH)2(NO)L(PPh3)2](BPh4)2 derivatives. Binuclear [{ReH(NO)L(PPh3)2}2(μ-HNNArArNNH)](BPh4)2 and [{Re(4-CH3C6H4NNH)(NO)L(PPh3)2}2(μ-HNNArArNNH)](BPh4)4 complexes (ArAr=4,4′-C6H4C6H4, 4,4′-C6H4CH2C6H4) were also prepared. The reaction of the triphenylphosphine ReH2(NO)(PPh3)3 complex with aryldiazonium cations was studied and led exclusively to mono-aryldiazene [ReH(ArNNH)(NO)(PPh3)3]BPh4 and [{ReH(NO)(PPh3)3}2(μ-HNNArArNNH)](BPh4)2 derivatives. The complexes were characterised spectroscopically (IR, NMR) using the 15N-labelled derivatives. The aryldiazenido [ReH(C6H5N2){PPh(OEt)2}4]BPh4 complex was prepared by allowing trihydride ReH3[PPh(OEt)2]4 to react with phenyldiazonium tetrafluoroborate. A reaction path involving the aryldiazene [ReH2(C6H5NNH){PPh(OEt)2}4]+ intermediate was also proposed.  相似文献   

3.
Reactions of alloxan (all) with [PtL(PPh3)2] (L′= trans-stilbene, L″ diphenylacetylene) afford the side-bonded ketone complex [Pt(all)(PPh3)2] which may also be obtained from the hydrate of alloxan and [PtL′(Pph3)2]. Similarly diethyl oxomalonate (dio) and [Pt(PPh3)4] afford a side-bonded ketone complex [Pt(dio)(PPh3)2]. Reaction of isatin with [Pt(PPh34] gives trans-[PtH{NCO(o-C6H4)CO}(PPh3)2] and benzoyl cyanide and [PtL′(PPh3)2] give cis-[Pt(CN)(COPh3)2] and trans-[Pt(CN)2(PPh2)2].  相似文献   

4.
The reaction of cis-[PdCl2(CNR)2] (R = Ph, p-MeC6H4, p-MeOC6H4) and trans-[PdI2(CNPh)2] with HgR′2 (R′ = Me, Ph) followed by addition of PPh3 (Pd/PPh3, 12) gives complexes of the type trans- [PdX {C(=NR)C(R′)=NR}(PPh3)2] (X = Cl, I) I as main products. These bis(imino) compounds may result from double insertion of the coordinated isocyanides into a PdR′ σ-bond. NaBPh4 was also found to act like HgPh2 as a good phenylating agent towards coordinated isocyanide. The reactions of I with methanolic HClO4 yield cationic compounds: trans- [PdX{C(NHR)C(R′)=NR}(PPh3)2]ClO4; the protonated bis(imino) group may also be formulated as {C(=NR)C(R′)NHR} and a fast equilibrium between the two forms probably exists in solution. The factors influencing the reaction with HgR′2 and spectroscopic data (IR and 1H NMR) for the complexes are reported and discussed.  相似文献   

5.
The electrochemical behaviour of thio and phosphido complexes of iron(I): Fe2XY(CO)6nLn (X = Y = SR, PR2 and X = SR, Y = PR2, L = PR3) has been studied on platinum and mercury electrodes, in organic solvent. These complexes are reduced in a two-electron irreversible process. A large difference is observed between their oxidation potentials on mercury and platinum electrodes; this is ascribed to the formation of a mercury complex in which mercury is inserted into the metalmetal bond. In oxidation on platinum electrodes, two mono-electronic waves are observed. The influece of the ligand basicity on the cathodic E12 values is discussed. A parallel shift is observed between the E12 and the IR ν(CO) of the totally symmetrical mode. Chemical oxidation of the complexes shows that the dications cannot be isolated, and leads to isolation of the following species: [FeP(CH3)2(CO)3]2AgNO3, [FeSCH3(CO)2P(CH3)3]2(NO3)2, {[FeSCH3(CO)2P(CH3)3]2F} PF6, where NO3? and F? act as ligands.  相似文献   

6.
Abstract

A series of complexes having the general formula, [Co(CNR)3(PR3)2]X2, X = ClO4, BF4 with CNR = CNCMe3, CNCHMe2, CNC6H11. CNCH2Ph and PR3 = PPh3, P(C6H4Me-p)3, P(C6H4OMe-p)3 has been synthesized and characterized. Synthesis can be achieved by reaction of [Co(CNR)4(AsPh3)2]X2 complexes with controlled excess of PR3 ligands, and by AgClO4/AgBF4 oxidation of the [Co(CNR)3(PR3)2]X complexes. The latter procedure is preferable. Alternate syntheses of the [Co(CNR)3(PR3)2]X complexes have also been employed. Five-coordinate Co(II) complexes have not been obtained using CNCMe3 with P(C6H4Me-p)3 ligands, CNCH2Ph with P(C6H4OMe-p)3 ligands, or CNC4H9-n with PPh3 ligands. [Co(CNC-Me3)3{P(C6H4Cl-p)3}2]ClO4 produced only [Co{CNCMe3)4H2O](ClO4)2 upon forced oxidation with excess AgClO4. [Co(CNR)3(PR3)2]X2 complexes appear to undergo varying degrees of distortion from regular (i.e., D 3h symmetry) axially-disubstituted trigonal bipyramidal coordination in the solid state, as evidenced by v(-N°C) IR patterns, but to assume regular trigonal bipyramidal coordination in solution. Effective magnetic moments indicate one-electron paramagnetism, and solution electronic spectra are compatible with trigonal bipyramidal coordination.  相似文献   

7.
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   

8.
The zerovalent carbyneosmium complex, OsCl(CC6H4NMe2)(CO)(PPh3)2, reacts with molecular oxygen giving a 1/1 adduct which is formulated as a divalent, octahedral complex retaining the unchanged carbyne ligand, and with a dihapto-peroxycarbonyl ligand, Os(O2CO)Cl(CC6H4NMe2)(PPh3(2. Reaction with HCl liberates CO2 and forms [OsCl2(CC6H4NMe2)(H2O)(PPh3)2]+ from which have been derived, and structurally characterised by X-ray crystallography, the two octahedral complexes, OsCl2(NCS)(CC6H4NMe2)(PPh3)2 and [OsCl2(CC6H4NMe2)(CNR)(PPh3)2]+. The Os—carbyne distances in these two species are, respectively, 1.75(1) and 1.78(1) Å.  相似文献   

9.
A series of gold(III) cations of the type cis-[CH3)2AuL2]+ X? where L  Ph3, PMePh2, PMe2Ph, PMe3, AsPh3, AsPh3, SbPh3, 12H2NCH2CH2NH2, 12 Ph2PCH2CH2-PPh2, 12 Ph2AsCH2CH2AsPh2, and 12o-C6H4(AsMe2)2 and X  BF4?, PF6?, ClO4?, and F3CSO3? has been prepared. In addition, the cis complexes [(CH3)(CD3)-Au(PPh3)2]F3CSO3, [(C2H5)2Au(PPh3)2]F3CSO and [(n-C4H9)2Au(PPh3)2]F3-CSO3 have been synthesized. All have been characterized by PMR, Raman and infrared spectroscopy. These [R2AuL2]X compounds yield only ethane, butane, or octane via reductive elimination, and no disproportionation is observed. The alkane eliminations have been studied in CHCl3, CH3Cl2, and CH3COCH3 solution as a function of temperature, concentration of the complex, and concentration of added ligand L. Elimination is fastest when L is bulky (PPh3 > PMePh2 > PMe2Ph > PMe3), decreases in the sequence SbPh3 > AsPh3 > PPh3, is slow with chelating ligands, is inhibited by excess ligand, and there is small anion effect as X is varied. As R is varied, the rate of elimination decreases Bu ? Et > Me. An intramolecular dissociative mechanism is proposed which involves rapid elimination of alkane from an electron deficient dialkylgold(III) complex with nonequivalent gold—carbon bonds and produces the corresponding [AuL2]X complex.  相似文献   

10.
The complexes trans-[PdCl{C(=NR)C(ME)=NR'} (PPh3)2] (R=C6H11,p-C6H4OMe; R.?=p-C6H4OMe, Me) containing a σ-bonded 1,4-diaza-3-menthyl-butadiene-2-yl group with different substituents on the nitrogen atoms have been prepared by two routes. The first involves initial methylation of the mixed isonitrile complex [PdCl2(CNR)(CNR')]by HgMe2, followed by reaction with PPh3 (PdPPh3molar ratio 12). The second method involves condensation of primary aliphatic amines with the carbonyl group of the 1-azabut-1-en-3-one-2-yl moiety of the complex trans-[PdCl{C(=NR)C(Me) = 0} (PPh3)2]. The 1,4-diaza-3-methylbutadiene-2-yl derivatives act through their imino nitrogen atoms as chelating ligands towards anhydrous metal chlorides MCl2 (M = Co, Ni, Cu, Zn). Magnetic moment measurements and the far-infrared and electronic spectra of these adducts indicate an essentially pseudo-tetrahedral configuration at M in the solid and in solution. With the ZnCl2 adducts, the 1H NMR pattern for the phenyl protons of the p-methoxyphenyl N-substituents dependss upon the position of the substituent i the 1,4-diazabutadiene chain.  相似文献   

11.
The reaction of IrH3(PPh3)2 with p-substituted aryldiazonium salts gives the compounds [IrH2(NHNC6H4R)(PPh3)2]+BF4- at low temperature (-10°C) and the o-metalated complexes [IrH(NHNC6H3R)(PPh3)2]+BF4- (R  F, OCH3) at 40–50°C. The reactions of the o-metalated complexes with CO, PPh3, NaI and HCl have been studied.  相似文献   

12.
On the Reactivity of Alkylthio Bridged 44 CVE Triangular Platinum Clusters: Reactions with Bidentate Phosphine Ligands The 44 cve (cluster valence electrons) triangular platinum clusters [{Pt(PR3)}3(μ‐SMe)3]Cl (PR3 = PPh3, 2a ; P(4‐FC6H4)3, 2b ; P(n‐Bu)3, 2c ) were found to react with PPh2CH2PPh2 (dppm) in a degradation reaction yielding dinuclear platinum(I) complexes [{Pt(PR3)}2(μ‐SMe)(μ‐dppm)]Cl (PR3 = PPh3, 3a ; P(4‐FC6H4)3, 3b ; P(n‐Bu)3; 3e ) and the platinum(II) complex [Pt(SMe)2(dppm)] ( 4 ), whereas the addition of PPh2CH2CH2PPh2 (dppe) to cluster 2a afforded a mixture of degradation products, among others the complexes [Pt(dppe)2] and [Pt(dppe)2]Cl2. On the other hand, the treatment of cluster 2a with PPh2CH2CH2CH2PPh2 (dppp) ended up in the formation of the cationic complex [{Pt(dppp)}2(μ‐SMe)2]Cl2 ( 5 ). Furthermore, the terminal PPh3 ligands in complex 3a proved to be subject to substitution by the stronger donating monodentate phosphine ligands PMePh2 and PMe2Ph yielding the analogous complexes [{Pt(PR3)}2(μ‐SMe)(μ‐dppm)]Cl (PR3 = PMePh2, 3c ; PMe2Ph, 3d ). NMR investigations on complexes 3 showed an inverse correlation of Tolmans electronic parameter ν with the coupling constants 1J(Pt,P) and 1J(Pt,Pt). All compounds were fully characterized by means of NMR and IR spectroscopy. X‐ray diffraction analyses were performed for the complexes [{Pt{P(4‐FC6H4)3}}2(μ‐SMe)(μ‐dppm)]Cl ( 3b ), [Pt(SMe)2(dppm)] ( 4 ), and [{Pt(dppp)}2(μ‐SMe)2]Cl2 ( 5 ).  相似文献   

13.
Reaction of PPh3 and [(p‐ClC6H4)N2][BF4] affords [(p‐ClC6H4)N(PPh3)N(PPh3)][BF4] 1 , while reaction with (Ph2PCH2)2 gave [(p‐ClC6H4)(NPh2PCH2)2)][BF4] 2 . These species confirm the Lewis acidity of [(p‐ClC6H4)N2(PR3)][BF4] cations at N. In contrast, use of bulky phosphines afford the species [ArN2(PR3)][BF4] (R=tBu 3 , Mes 4 ). Compound 3 undergoes one electron reduction to give the stable radical [(p‐ClC6H4)N2(PtBu3)]. 5 . Combination of 3 and PtBu3 acts as an FLP to effect (SPh)2 cleavage, generating [PhSPtBu3]+ and the radical [ArN2(PR3)].. Collectively, these data affirm the ability of the cations [ArN2(PR3)]+ to behave as one or two electron acceptors.  相似文献   

14.
The compounds [Pt(C2H4)2(PR3)] [PR3 = P-tBu2Me, P(C6H11)3, PPh3] react dimethyldivinylsilane or dimethyldivinyltin to give chelate complexes [Pt{(CH2CH)2MMe2} (PR3)] (M = Si or Sn). allyltrimethyltin reacts with various diethylene (tertiary phosphine)platinum compounds with cleavage of the allyl group to afford complexes [Pt(SnMe3)(η3-C3H5)(PR2)]. The NMR spectra (13C, 1H and 31P) of the new compounds have been recorded, and the data are discussed in terms of the structures proposed.  相似文献   

15.
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   

16.
1,2,3,4,7,7-Hexafluorobicyclo[2.2.1]heptadiene (1) and 2,3-bis(trimethyltin)-1,4,5,6,7,7-hexafluorobicyclo[2.2.1]hepta-2,5-diene (2) react with [M(Ph3P)4] (M = Pt, Pd) to afford air-stable adducts. 2,3-Dichloro-1,4,5,6,7,7-hexafluorobicyclo[2.2.1]hepta-2,5-diene (3) gives only [PtCl2(PPh3)2] with [Pt(Ph3P)4], but a low yield of an adduct was obtained with [Pd(PPh3)4]. The diene 1 also reacts with Fe(CO)5 to form the complex [(C7H2F6)Fe(CO)4], and with [Rh(C2H4)2(acac)] to give [(C7H2F6)Rh(acac)] in which the diene acts as a bidentate ligand. Similar products could not be isolated from the reactions of 2 and 3. A stable adduct, believed to be [{C7F6(SnMe3)2}Rh(CO)2(μ-Cl)2Rh(CO)2] has been isolated from the reaction between 2 and [Rh(CO)2Cl]2. This adduct reacts with PPh3 to give the bridge-cleavage product [{C7F6(SnMe3)2}RhCl(CO)(PPh3)2]. Reaction of 1 with [Rh(CO)2Cl]2 gives an unstable adduct which could not be isolated, and 2 does not react at room temperature. The chloro derivative 3 reacts with [PdCl2(PhCN)2] to give the adduct [(C7F6Cl2)PdCl(PhCN)], but 1 and 2 do not react under similar conditions. Stable substitution products [(C7F6R2)M] (R = H, M = Fe(CO)2(η-C5H5); R = SnMe3, M = Fe(CO)2(η-C5H5), Mn(CO)5, Ir(CO)2(PPh3)2, Rh(CO)2(PPh3)2; R = Cl, M = Ir(CO)2(PPh3)2, Rh(CO)2(PPh3)2) have been isolated from the reactions of the dienes with carbonylmetal anions. Insertion of the CHCH bond occurs when 1 is heated with [MnMe(CO)5] to give [{C7F6H2C(O)Me}Mn(CO)4], and this, on reaction with either PPh3 or [Pt(PPh3)4], gives [(C7F6H2COMe)Mn(CO)4PPh3].  相似文献   

17.
Os(η2-CH2O)(CO)2(PPh3)2 reacts with CSe2 to form a metallacycle Os(CH2OC[Se]Se)(CO)2(PPh3)2. This compound breaks down to Os(η2-CH2Se)(CO)2(PPh3)2 with probable loss of COSe. An alternative route to Os(η2-CH2Se)(CO)2(PPh3)2 and also Os(η2-CH2Te)(CO)2(PPh3)2 is through reaction of Os(CH2I)I(CO)2(PPh3)2 with SeH? and TeH?, respectively. HCl with Os(η2-CH2E)(CO)2(PPh3)2 (E = Se or Te) gives OsCl(EMe)(CO)2(PPh3)2 while methyl iodide gives [Os(η2-CH2EMe)(CO)2 - (PPh3)2] I. BH4? reacts with these cations to cleave the CE bond and form Os(CH3)(EMe)(CO)2(PPh3)2.  相似文献   

18.
L2ReH7 (L=PPh3) reacts with 3,3-dimethylbutene and benzene (the latter being used as solvent) to give the dihydridocyclohexadienyl compound L25-C6H7)ReH2, the X-ray crystal structure of which is reported. With deuteriobenzene, the reaction gives a product which is partially deuteriated at the rhenium atom and in the ortho-positions of the phosphine ligands.  相似文献   

19.
New Phosphido-bridged Multinuclear Complexes of Ag and Zn. The Crystal Structures of [Ag3(PPh2)3(PnBu2tBu)3], [Ag4(PPh2)4(PR3)4] (PR3 = PMenPr2, PnPr3), [Ag4(PPh2)4(PEt3)4]n, [Zn4(PPh2)4Cl4(PRR′2)2] (PRR′2 = PMenPr2, PnBu3, PEt2Ph), [Zn4(PhPSiMe3)4Cl4(C4H8O)2] and [Zn4(PtBu2)4Cl4] AgCl reacts with Ph2PSiMe3 in the presence of tertiary Phosphines (PnBu2tBu, PMenPr2, PnPr3 and PEt3) to form the multinuclear complexes [Ag3(PPh2)3(PnBu2tBu)3] 1 , [Ag4(PPh2)4(PR3)4] (PR3 = PMenPr2 2 , PnPr3 3 ) and [Ag4(PPh2)4(PEt3)4]n 4 . In analogy to that ZnCl2 reacts with Ph2PSiMe3 and PRR′2 to form the multinuclear complexes [Zn4(PPh2)4Cl4(PRR′2)2] (PRR′2 = PMenPr2 5 , PnBu3 6 , PEt2Ph 7 ). Further it was possible to obtain the compounds [Zn4(PhPSiMe3)4Cl4(C4H8O)2] 8 and [Zn4(PtBu2)4Cl4] 9 by reaction of ZnCl2 with PhP(SiMe3)2 and tBu2PSiMe3, respectively. The structures were characterized by X-ray single crystal structure analysis. Crystallographic data see “Inhaltsübersicht”.  相似文献   

20.
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   

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