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1.
By reaction of As2Co2(CO)6 with M(CO)5THF (M = Cr, Mo, W), the heteronuclear complexes (CO)5M · As2Co2(CO)6 of low stability were obtained. Phosphine substitution increased the basicity of the As2Co2 cluster, into which up to two PMe3 ligands and up to four P(OMe)3 ligands could be introduced. Subsequently, two M(CO)5 units (M = Cr, Mo, or W) could be attached to As2Co2(CO)5 · PMe3, As2Co2(CO)4L2 (L = PMe3, P(OMe)3), and As2Co2(CO)3[P(OMe)3]3. The crystal structure of [(CO)5W]2As2Co2(CO)4[P(OMe)3]2 was determined.  相似文献   

2.
The thermally stable solids Re2(CO)8[μ-InRe(CO)5]2 and Re4(CO)123-InRe(CO)5]4 could be obtained by treatment of In with Re2(CO)10 in a bomb tube. A mechanism of the formation of the latter cluster from the first one is proposed. Compared with Re2(CO)8[μ-InRe(CO)5]2, Re4(CO)123_InRe(CO)5]4 shows in polar solvents an unusual high stability, which can be explained by the higher coordination number of In with rhenium carbonyl ligands. Re4(CO)12-[μ3-InRe(CO)5]4 dissolves monomerically in acetone, where as Re2(CO)8[μ-InRe(CO)5]2 dissociates yielding Re(CO)5? anions. Single-crystal X-ray analyses of Re4(CO)123-InRe(CO)5]4 establish the metal skeleton. The central molecular fragment Re4(CO)12 contains a tetrahedral arrangement of four bonded Re atoms [ReRe 302.8 (5) pm]. The triangles of this fragment are capped with a μ3-InRe(CO)5 group each [InRe(terminal) 273.5 (7) pm; InRe (polyhedral) 281.8 (7) pm]. The bridging type of In atoms with the Re4 tetrahedron and the metal skeleton was realized for the first time. By treating Re4(CO)123-InRe(CO)5]4 with Br2 the existence of Re(CO)5 ligands could be proved by isolating BrRe(CO)5.  相似文献   

3.
The iridium and rhodium complexes [MCl(CO)2(NH2C6H4Me-4)] (M = Ir or Rh) react with [Os3(μ-H)2(CO)10] to give the tetranuclear clusters [MOs3(μ-H)2(μ-Cl)(CO)12]; the iridium compound being structurally identified by X-ray diffraction. Similarly, [IrCl(CO)2(NH2C6H4Me-4)] and [Rh2(μ-CO)2(η-C5Me5)2] afford the tetranuclear cluster [Ir2Rh2(μ-CO)(μ3-CO)2(CO)4(η-C5Me5)2], also characterised by single-crystal X-ray crystallog  相似文献   

4.
Co2(CO)8 and Hg[Co(CO)4]2 react sodium amalgam and/or mercury in ethereal solvents to give a variety of products. On treatment with aqueous M(o-phen)3Cl2(M  Fe, Ni), the anions [Co(CO)4?, [Co3(CO)10]?, {Hg[Co(CO)4]3}? and {Hg[Co(CO)4]2Cl}? could be isolated as their [M(o-phen)3]2+ salts. The effect of LiBr on the reacting systems was also investigated and the anion {Hg[Co(CO)4]2Br}? isolated.  相似文献   

5.
The utility of photochemical methods for the directed synthesis of mixed-metal metal clusters has been explored. The 366 nm photolysis of a solution containing [PPN] [Co(CO)4] (PPN = (Ph3P)2N+) and Os3(CO)12 gives the new cluster [PPN][CoOs3(CO)13] in 33% yield. Irradiation of a mixture of Fe(CO)5 and H2Os3(CO)10 yields H2FeOs3(CO)13 in 95% yield, and photolysis of Ru3(CO)12 in the presence of H2Os3(CO)10 gives the new cluster H2RuOs3(CO)13. Details of these syntheses, their probable mechanisms, and the characterization of the new compounds are discussed.  相似文献   

6.
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   

7.
The reactions of [Fe3(CO)12] or [Ru3(CO)12] with RNC (R=Ph, C6H4OMe-p or CH2SO2C6H4Me-p) have been investigated using electrospray mass spectrometry. Species arising from substitution of up to six ligands were detected for [Fe3(CO)12], but the higher-substituted compounds were too unstable to be isolated. The crystal structure of [Fe3(CO)10(CNPh)2] was determined at 150 and 298 K to show that both isonitrile ligands were trans to each other on the same Fe atom. For [Ru3(CO)12] substitution of up to three COs was found, together with the formation of higher-nuclearity clusters. [Ru4(CO)11(CNPh)3] was structurally characterised and has a spiked-triangular Ru4 core with two of the CNPh ligands coordinated in an unusual μ32 mode.  相似文献   

8.
The objective of the present work was to synthesize mononuclear ruthenium complex [RuCl2(CO)2{Te(CH2SiMe3)2}2] (1) by the reaction of Te(CH2SiMe3)2 and [RuCl2(CO)3]2. However, the stoichiometric reaction affords a mixture of 1 and [RuCl2(CO){Te(CH2SiMe3)2}3] (2). The X-ray structures show the formation of the cis(Cl), cis(C), trans(Te) isomer of 1 and the cis(Cl), mer(Te) isomer of 2. The 125Te NMR spectra of the complexes are reported. The complex distribution depends on the initial molar ratio of the reactants. With an excess of [RuCl2(CO)3]2 only 1 is formed. In addition to the stoichiometric reaction, a mixture of 1 and 2 is observed even when using an excess of Te(CH2SiMe3)2. Complex 1 is, however, always the main product. In these cases the 125Te NMR spectra of the reaction solution also indicates the presence of unreacted ligand.  相似文献   

9.
Fe3Te2(CO)9 is shown to be a useful precursor to a variety of heterometallic carbonyl clusters in reactions which appear to proceed via the intermediacy of Fe2(Te2)(CO)6. Fe3Te2(CO)9 decomposed in polar solvents to give Fe2(Te2)(CO)6 which could be dimerized to Fe4Te4(CO)12. Fe3Te2(CO)9 reacted with C5H5Co(CO)2 and Pt(C2H4)(PPh3)2 to give good yields of (C5H5CO)Fe2Te2(CO)7 and Fe2PtTe2(CO)6(PPh3)2, respectively. (C5H5Co)Fe2Te2(CO)7 underwent reversible decarbonylation to give a mixture of two isomers of (C5H5Co)Fe2Te2(CO)6 as established by 125Te NMR spectroscopy. Upon reaction with Co2(CO)8, Fe3Te2(CO)9 gave Co2FeTe(CO)9 or Co4Te2(CO)11 depending on the reaction conditions. Co4Te2(CO)11, like Fe3Te2(CO)10 and (C5H5Co)Fe2Te2(CO)7, can be reversibly decarbonylated. The assembly of Co2FeTe(CO)9 may be mechanistically related to the conversion of Fe2(S2)(CO)6 to FeCo2S(CO)9 which was found to proceed via Co2Fe2S2(CO)11. Alternatively, Co2Fe2S2(CO)11 reacted photochemically with [C5H5Mo(CO)3]2 to give the known, chiral cluster (C5H5Mo)CoFeS(CO)8. While Fe2(Te2)(CO)6 thermally dimerized to Fe4Te4(CO)12, Fe2(S2)(CO)6 gave the analogous dimer only upon photolysis. In contrast to the stability of (C5H5CO)Fe2Te2(CO)7, the reaction of C5H5Co(CO)2 with Fe2(S2)(CO)6 gave only (C5H5CO)Fe2S2(CO)6 which is proposed to be structurally related to Fe3S2(CO)9 and not (C5H5Co)3S2 or Fe2PtS2(CO)6(PPh3)2.  相似文献   

10.
The reactions of several mono- and poly-nuclear carbonyl metallates with nitrosonium ion have been studied. Besides simple substitution of a carbon monoxide with NO+ some reactions yielded products containing other nitrogeneous ligands. When [CoRu3(CO)13]? reacts with NO+, low yields of the new nitrido cluster CoRu3N(CO)12 are formed. Prior conversion of [CoRu3(CO)13]? to the new hydrido cluster [H2CoRu3(CO)12]? under hydrogen, followed by nitrosylation, forms the new imido cluster H2Ru3(NH)(CO)9 in very low yield. The reaction of [FeCO3(CO)12]? with NO+ also generates an imido cluster, FeCo2(NH)(CO)9, in 15% yield. This cluster has been characterized by X-ray crystallography and was found to be similar to the tricobalt alkylidyne clusters. (Triclinic crystal system, P1 space group, Z=2, a 6.787(1), b 8.016(1), c 13.881(2) Å, α 95.50(1), β 100.77(1), γ 107.93(1)°. Modifications of the nitrosylations using NO+ were studied. In particular, the addition of triethylamine or N-t-butylbenzaldimine allowed the use of NO+ in THF without solvent decomposition. With [CpMo(CO)3]? and [CpFe(CO)2]? the N-nitrosoiminium species appears to form transient alkylmetals which further react to give the dimers [CpMo(CO)3]2 and [CpFe(CO)2]2.  相似文献   

11.
The molecular structure of benzoylmethylidynetricobalt nonacarbonyl, C6H5C(O)CCo3(CO)9, has been determined by single crystal X-ray crystallography. The sample crystallized from heptane forms as monoclinic prisms of spae group P21/c, with a = 8.836(2), b = 14.097(10), c = 16.514(3), β = 103.37(6) and z = 2. The final R value was 0.053. The structure is regular and normal but does not aid in explaining the interesting properties of this cluster.  相似文献   

12.
The compound [Re2(CO)8(MeCN)2] reacts with diazoindene (C9H6N2) while refluxing in THF to afford three dirhenium products in which C9H6N2 is cleaved with loss of N2 and with incorporation of the residual indenylidene group into the products. Two indenylidene groups are coupled in two diastereomers of [Re2(CO)6(μ,η55-1,1′-C18H12)] where C18H12=bis(indenylidene). X-ray structures show that these isomers are related as RR/SS and RS isomers. These have the two Re(CO)3 groups coordinated transoid and cisoid, respectively to a trans bis(indenylidene) bridge. The third product is the μ-indenylidene complex [Re2(CO)8(μ,η15-C9H6)], which was also structurally characterised by X-ray diffraction.  相似文献   

13.
The reaction of Ru3(CO)12 with but-2-yn-1,4-diol (HOCH2CCCH2OH, BUD) in CH3OH/KOH followed by acidification with HCl leads to four products, one of which has been identified as the title complex (μ-Cl)Ru3(CO)934-H2CCC(H)CH2]. This is an open cluster containing a bridging Cl atom on the open side and a C4H5 moiety bound to all the metals. The structure of the complex has been determined by X-ray analysis.The thermal reaction of Ru3(CO)12 with BUD has been revisited for a comparison with the results in alkaline solution. The main product is the allylic derivative HRu3(CO)9[HCCHCCHO].  相似文献   

14.
Reaction of [Fe2(CO)9] with a half molar amount of R2PYPR2 (Y = CH2, R = Ph, Me, OMe or OPri; Y = N(Et), R = OPh, OMe or OCH2; Y = N(Me), R = OPri or OEt) leads to the ready formation of a product which on irradiation with ultraviolet light rapidly decarbonylates to the heptacarbonyl derivative [Fe2(μ-CO)(CO)6{μ-R2PYPR2}]. Treatment of the latter with a slight excess of the appropriate ligand results, under photochemical conditions, in the formation of the dinuclear pentacarbonyl complex [Fe2(μ-CO)(C))4{μ-R2PYPR2}2] but under thermal conditions in the formation of the mononuclear species [Fe(CO)3{R2PYPR2}]. Reaction of [Ru3(CO)12] with an equimolar amount of (RO)2PN(R′)P(OR)2 (R′ = Me, R = Pri or Et; R′ = Et, R = Ph or Me) under either thermal or photochemical conditions produces [Ru3(CO)10{μ-(RO)2PN(OR)2}] which reacts further with excess (RO)2PN(R′)P(OR)2 on irradiation with ultraviolet light to afford the dinuclear compound [Ru2(μ-CO)(CO4{μ-(RO)2PN(R′)P(OR)2}2]. The molecular structure of [Ru2(μ-CO)(CO)4{μ-(MeO)2PN(Et)P(OMe)2}2], which has been determined by X-ray crystallography, is described.  相似文献   

15.
The thiocarbonyl-bridged complex Cp2Fe2(CO)3CS is obtained by the reaction of CpFe(CO)2? and (PhO)2CS in THF. Infrared and NMR spectra show that the compound exists in solution in interconverting cis and trans forms, but that the isomerization occurs more slowly than for the carbonyl analog [CpFe(CO)2]2. Most reagents which cleave [CpFe(CO)2]2, such as Br2, HgCl2, and O2/HBF4, do not give simple cleavage reactions with Cp2Fe2(CO)3CS. Reductive cleavage of Cp2Fe2(CO)3CS with Na(Hg) gives the thiocarbonyl anion CpFe(CO)(CS)?, which reacts with Ph3SnCl to form CpFe(CO)(CS)SnPh3. Methylamine reacts with CpFe(CO)(CS)SnPh3 to give CpFe(CO)(CNMe)SnPh3, while ethylenediamine gives the carbene complexes CpFe(CO)C(N2C2H6)SnPh3. The preparation of another new carbene complex, [CpFe(CO)2C(OMe)2]PF6, is also described.  相似文献   

16.
Ru3(CO)12 has been reacted with the compounds hex-1-en-3-yne [EtC≡CCH=CH2], 2-methyl-hex-1-en-3-yne [EtC≡CC(=CH2)CH3] and with 3(ethoxy-silyl)propyl isocyanate [(EtO)3Si(CH2)3NCO] and the compound tb [(EtO)3Si(CH2)3NHC(=O)OCH2C≡CCH2OC(=O)NH(CH2)3Si(OEt)3] in hydrocarbon solution. Some reactions in CH3OH/KOH solution (followed by acidification) have also been performed. The main products of the reactions with ene-ynes are the clusters Ru3(CO)6(μ-CO)2L2 (L = C6H8, C7H10) and their demolition products, the “ferrole” Ru2(CO)6L2 complexes. One of the isomers of Ru3(CO)6(μ-CO)2L2, and Ru2(CO)6L2 (L = C7H10) have been reacted with vinyl-triethoxysilane [(EtO)3SiCH=CH2]: these reactions did not afford complexes containing new carbon–carbon bonds or triethoxy-silyl groups. Only polymerization of vinyl-triethoxysilane occurred. The reactions of Ru3(CO)12 with triethoxysilyl-propyl-isocyanate and tb (in the presence of Me3NO) lead to the same products, that is the isomeric complexes (μ-H)Ru3(CO)9[C=N(H)(CH2)3Si(OEt)3] with a “perpendicular” ligand (complex 3, as proposed on the basis of spectroscopic results) and (μ-H)Ru3(CO)9[HC=N(CH2)3Si(OEt)3] with a “parallel” ligand (complex 4, as confirmed by a X-ray analysis). The reaction pathways leading to these products are discussed. Complex 4 has been reacted with tetraethyl orthosilicate and the resulting material has been characterized. These reactions are part of a study on the synthesis of inorganic-organometallic materials through sol–gel techniques. This paper is dedicated to Prof. Gunther Schmid in the occasion of his 70th birthday.  相似文献   

17.
Up to four carbonyl groups of Co2Ir2(CO)12 have been replaced by trimethylphosphite to form tetranuclear clusters of formula Co2Ir2(CO)12?n[P(OMe)3]n. The clusters do not exhibit the redistribution of the metal core which is observed in the case of mixed cobalt—rhodium clusters. Attachment of three or four trimethylphosphites to the metal skeleton of the cluster inhibits the scrambling of the carbonyl groups.  相似文献   

18.
The clectrochemical behaviour of the complexes [RuII(L)(CO)2Cl2], [RuII(L)(CO)Cl3][Me4N] and [RuII(L)(CO)2(CH3CN)2][CF3SO3]2 (L = 2,2′-bipyridine or 4,4′-isopropoxycarbonyl-2,2′-bipyridine) has been investigated in CH3CN. The oxidation of [Ru(L)(CO)2Cl2] produces new complexes [RuIII(L)(CO)(CH3CN)2Cl]2+ as a consequence of the instability of the electrogenerated transient RuIII species [RuIII(L)(CO)2Cl2]+. In contrast, the oxidation of [RuII(L)(CO)Cl3][Me4N] produces the stable [RuIII(L)(CO)Cl3] complex. In contrast [RuII(L)(CO)2(CH3CN)2][CF3SO3]2 is not oxidized in the range up to the most positive potentials achievable. The reduction of [RuII(L)(CO)2Cl2] and [RuII(L)(CO)2(CH3CN)2][CF3SO3]2 results in the formation of identical dark blue strongly adherent electroactive films. These films exhibit the characteristics of a metal-metal bond dimer structure. No films are obtained on reduction of [RuII(L)(CO)Cl3][Me4N]. The effect of the substitution of the bipyridine ligand by electron-withdrawing carboxy ester groups on the electrochemical behaviour of all these complexes has also been investigated.  相似文献   

19.
The reaction of the labile compound [Re2(CO)8(CH3CN)2] with 2,3-bis(2-pyridyl)pyrazine in dichloromethane solution at reflux temperature afforded the structural dirhenium isomers [Re2(CO)8(C14H10N4)] (1 and 2), and the complex [Re2(CO)8(C14H10N4)Re2(CO)8] (3). In 1, the ligand is σ,σ′-N,N′-coordinated to a Re(CO)3 fragment through pyridine and pyrazine to form a five-membered chelate ring. A seven-membered ring is obtained for isomer 2 by N-coordination of the 2-pyridyl groups while the pyrazine ring remains uncoordinated. For 2, isomers 2a and 2b are found in a dynamic equilibrium ratio [2a]/[2b]  =  7 in solution, detected by 1H NMR (−50 °C, CD3COCD3), coalescence being observed above room temperature. The ligand in 3 behaves as an 8e-donor bridge bonding two Re(CO)3 fragments through two (σ,σ′-N,N′) interactions. When the reaction was carried out in refluxing tetrahydrofuran, complex [Re2(CO)6(C14H10N4)2] (4) was obtained in addition to compounds 1-3. The dinuclear rhenium derivative 4 contains two units of the organic ligand σ,σ′-N,N′-coordinated in a chelate form to each rhenium core. The X-ray crystal structures for 1 and 3 are reported.  相似文献   

20.
The complex Co2(CO)6[μ-η2-(H3CCCCH2CH2OH)] (1) with the ligand 3-pentyn-1-ol (pol) has been synthesized following established procedures. Its structure has been determined by X-ray analysis. The complex Co2(CO)6(mbo) (mbo = 2-methyl-3-butyn-2-ol, HCCC(CH3)2OH), (3), along with the already known Co2(CO)6(bud) (bud = 1,4-butyn-diol, HOCH2CCCH2OH) (2), and Co2(CO)8 were reacted with 2(diphenylphosphino)ethyl-triethoxysilane [Ph2PCH2CH2Si(OCH2CH3)3] (dpts) and tris(hydroxymethyl)phosphine [P(CH2OH)3] (thp). With dpts, mono- and di-substituted complexes were obtained: these were characterized by analytical and spectroscopic techniques. The structures of Co2(CO)6(dpts)2 (5) and of Co2(CO)4(pol)(dpts)2 (8) have been determined by X-ray analysis.Complex (1) was reacted with 3-(triethoxysilyl)propyl isocyanate [(H3CCH2O)3Si(CH2)3NCO] (tsi): the new complex Co2(CO)6[H3CCCCH2CH2OC(O)NH(CH2)3Si(OCH2CH3)3] (9) was obtained and spectroscopically characterized. The complex has also been reacted with tetraethyl orthosilicate (teos); a new inorganic-organometallic material was obtained. Complex (5) has been grafted on the mesoporous material SBA-15. The hybrid inorganic-organometallic materials obtained have been characterized by inductively coupled plasma-mass spectrometry (ICP-MS), infrared spectroscopy (FT-IR) under vacuum conditions, X-ray diffraction (XRD) and scanning electron microscopy coupled to EDS probe (SEM-EDS).  相似文献   

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