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1.
The olefinic tertiary phospine complex Ru3(CO)10(μ-η2, P-CH2CHC6H4PPh2) is converted to the title μ4-alkyne-Ru4 cluster at 135°C; the latter is also formed from H2Ru332, P-HCCC6H4PPh2)(CO)8 and Ru3(CO)12. Crystals of the Ru4 complex are monoclinic, space group P21, with a 8.700(3), b 17.611(3), c 11.926(2) Å, β 102.720(3)°, with Z = 2; 1702 data (I > 2.5 (σ)I) were refined to R = 0.026, Rw = 0.028. The molecule contains a distorted octahedral Ru4C2 core, one carbon of which is attached to an o-C6H4PPh2 moiety coordinated via P to a wing-tip Ru of the Ru4 butterfly.  相似文献   

2.
The activation of the CN triple bond of benzonitrile in the presence of acetic acid and of Os3(CO)12 or H2Os3(CO)10 has been studied. When Os3(CO)12 reacts with PhCN and acetic acid in refluxing n-octane the three main products are (μ-H)Os3(CO)10(μ-O2CCH3) (I), (μ-H)Os3(CO)10(μ-NCHPh) (II) and (μ-H)Os3(CO)10(μ-NHCH2Ph) (III); II and III are analogues of (μ-H)Ru3(CO)10(μ-NCHPh) and (μ-H)Ru3(CO)10(μ-NHCH2Ph) obtained from PhCN, Ru3(CO)12 or H4Ru4(CO)]12, and acetic acid. In contrast to the reaction with ruthenium clusters, Os3(CO)12 and H2Os3(CO)10 also give the adduct Os3(CO)10(CH3COOH) (I). The structure of I has been fully elucidated by X-ray diffraction. Crystals of I are monoclinic, space group P21/m, with unit cell parameters a 7.858(6), b 12.542(8), c 9.867(6) Å, β 109.92(2)°, Z = 2. In I an edge of the triangular cluster of osmium atoms is doubly bridged by a hydride and an acetate ligand. Ten terminal carbonyl groups are bonded to the metal atoms.  相似文献   

3.
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   

4.
The complexes [Ru3(CO)7(PPh2)2(C6H4)] and [Ru2(CO)5(PPh3)(μ-PPh2)(μ-OCPh)] were obtained by pyrolysis of [Ru3(CO)9(PPh3)3] and tested as catalysts for the hydrogenation of cyclohexene and 2-cyclohexen-1-one. The structure of [Ru2(CO)5(PPh3)(μ-PPh2)(μ-OCPh)] was established by a single crystal X-ray diffraction study.  相似文献   

5.
A NaY zeolite entrapped Ru3(CO)12 cluster has been synthesized from RuCl3 ionexchanged NaY, which are well characterized by IR and Raman spectroscopy and CO chemisorption. When the Ru3+/NaY sample is heated from 298 to 393 K for 25 h and kept for 10–20 h at 393 K, the sample color changes from dark to brown-yellow. Thein situ infrared spectrum exhibits bands at 2130, 2064, 2040, 2017, 1990, 1953 and 1925 cm−1. The bands at 2064, 2040, 2017 and 1990 cm−1 are assigned to Ru3(CO)12/NaY, which are close to crystalline Ru3(CO)12. Furthermore, Raman results provide the bands at 150 and 185 cm−1, which are attributed to Ru-Ru bonds of crystalline Ru3(CO)12). CO chemisorption on [Ru3]/NaY gives a CO/Ru ratio of 3.85, which is similar to the stoichiometry of Ru3(CO)12 (CO/Ru=4.0).  相似文献   

6.
The reaction of M3(CO)12 (M = Ru, Fe) with excess bi-2,7-cyclooctadienyl (C16H22) 1 gave a mononuclear complex M(CO)3(1,2,1′-2′-η4-C16H22), 2a (M = Ru) or 3a (M = Fe), in good yield. Treatment of 2a with Fe3(CO)12 or reaction of 3a with Ru3(CO)12 gave the heterobimetallic complex RuFe(CO)6(C10H22) consisting of a ruthenacyclopentadiene unit coordinated to an Fe(CO)3 fragment, as confirmed by 1H NMR and X-ray studies. The corresponding homobimetallic complex Ru2(CO)6(C16H22) was obtained from the 1:1 reaction of 2a with Ru3(CO)12, while the direct reaction of 1 with Ru3(CO)12 gave Ru2(CO)6(C16H20) preferentially with a loss of two hydrogen atoms. The pathway for formation of these bimetallic complexes was interpreted as a dehydrogenative metallacyclization followed by hydrogen transfer.  相似文献   

7.
The new complex Ru3(CO)9(PPh2H)3 (I) was prepared by the direct thermal reaction of Ru3(CO)12 with PPh2 H and was spectroscopically characterized. Irradiation of I with λ ≥ 300 nm leads to the formation of Ru2(μ-PPh2)2(CO)6 (II) and three new phosphido-bridged complexes, Ru3(μ-H)2(μ-PPh2)2(CO)8 (III), Ru3(μ-H)2(μ-PPh2)2(CO)7(PPh2H) (IV) and Ru3(μ-H)(μ-PPh2)3(CO)7 (V). These complexes have been characterized spectroscopically and Ru3 (μ-H)(μ-PPh2)3(CO)7 by a complete single crystal X-ray structure determination. It crystallizes in the space group P21/n with a 20.256(3), b 22.418(6), c 20.433(5) Å, β 112.64(2)°, V 8564(4) Å3, and Z = 8. Diffraction data were collected on a Syntex P21 automated diffractometer using graphite-monochromatized Mo-Kα radiation, and the structure was refined to RF 4.76% and RwF 5.25% for the 8,847 independent reflections with F0 > 6σ(F0). The structure consists of a triangular array of Ru atoms with seven terminal carbonyl ligands, three bridging diphenylphosphido ligands which bridge each of the RuRu bonds, and the hydride ligand which bridges one RuRu bond. Complex IV was also shown to give V upon photolysis and is thus an intermediate in the photoinduced formation of V from I.  相似文献   

8.
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   

9.
The complexes H3Os3(CO)9CMe, H2Os3(CO)10, H2Os3(CO)9L (L = PEt3, PPh3 or AsPh3), HOs3(CO)10CHC(H)Ph, and Os3(CO)10HC2Me undergo protonation in acid to yield [H4Os3(CO)9CMe]+ and [H4Os3(CO)10]2+, [H3Os3(CO)9L]+, [H2Os3(CO)10CHC(H)Ph]+ and [HOs3(CO)10HC2Me]+, respectively. The structure of these ions and their hydrido-ligand transfer reactions are described.  相似文献   

10.
Ethylation of Cp(CO)2FeCHCHCONR2 (I) yields the imidates [Cp(CO)2FeCHCHC(OEt)NR2]+X? (II). A photochemical reaction between I and PPh3 yields Cp(CO)(PPh3)FeCHCHCHCONR2 (III) from which the corresponding imidates (IV) can be obtained.Spectral data suggest that the positive charge in II and IV is localized mainly at the imidate group and that the participation of the Cp(CO)LFe substituent in the stabilization of the positive charge is insignificant, particularly in the case of cations lI.This conclusion is confirmed by X-ray analysis of IIb. Determination of the exact structure of IIb also reveals the absence of a direct interaction between the metal and the cationic center even though the complex has cis geometry. A reaction between Ic and Fe2(CO)9 yields a binuclear complex (IV). The initial complexes I were obtained by substitution of the anion [CpFe(CO)2]? for chlorine in ClCHCHCONR2. These reactions are stereospecific.  相似文献   

11.
The title compound can be prepared in good yield by heating either [Ru4(μ-H)4(CO)12] or [Au2Ru43-H)2(CO)12(PPh3)2] with [AuMe(PPh3)] in toluene. The related compound [Au3Ru43-H)(μ-dppm)(CO)12(PPh3)] has also been prepared. Both trigoldtetraruthenium clusters undergo dynamic behaviour in solution, involving intramolecular rearrangement of the metal core, as revealed by variable temperature NMR studies. The crystal structure of [Au3Ru43-H)(CO)12(PPh3)3] has been established by an X-ray diffraction study. The metal atom core comprises a trigonal bipyramidal AuRu4 unit with two AuRu2 faces capped by gold atoms.  相似文献   

12.
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   

13.
The synthesis of the new cyclopentadiene, C5Me4(hex)H is described and its reaction with Ru3(CO)12 to yield (C5Me4hex)2Ru2(CO)4 (hex = n-hexyl) is reported. The X-ray crystal structure of the dimer confirms the structure with bridging and terminal CO groups. Reactions of the dimer to yield (C5Me4hex)Ru(CO)2X (X = Cl, Br, I) are reported. IR, NMR and mass spectra are reported for all new compounds. The solubility of the dimer is found to be 10 times greater than that for (C5Me5)2Ru2(CO)4.  相似文献   

14.
Five trinuclear substituted complexes of the type Ru3(CO)11L, Ru3(CO)10L2 and Ru3(CO)9L3 were synthesised by the reaction of Ru3(CO)12 with fluorine substituted phosphine ligands, {P(C6H4F-m)3 and P(C6H4F-p)3}, using the radical anion catalysed method. The structures of the resulting clusters were elucidated by means of elemental analyses and spectroscopic methods, which included IR, 1H, 13C and 31P NMR spectroscopy. X-ray crystallographic studies of four of the complexes were carried out. In all the complexes, the ligand occupies an equatorial position due to steric reasons, and coordination of the ligand is observed only at the phosphorus atom. In the two monosubstituted complexes, Ru3(CO)11P(C6H4F-m)3 and Ru3(CO)11P(C6H4F-p)3, the effect of substitution resulted in an increase in the Ru-Ru distances. Out of the three Ru-Ru bonds, the one which is cis to the ligand is noticeably longer than the other two. The asymmetric unit of the disubstituted complex Ru3(CO)10{P(C6H4F-p)3}2 is composed of two molecules, A and B. As expected, the two phosphorus ligands are equatorially bonded to two different ruthenium atoms. The asymmetric unit of the trisubstituted complex is composed of one molecule of Ru3(CO)9{P(C6H4F-m)3}3 and one disordered solvent molecule. The structure consists of one triangular ruthenium complex in which each of the phosphorus ligands is equatorially bonded to three different ruthenium atoms. In the structure, disorder of the fluorine atoms is observed. Bond parameters, especially bond lengths and bond angles, are correlated to the structure and also are compared with the literature data of similar compounds.  相似文献   

15.
Heating cis-[Ru(S2CNMe2)2(CO)2] and [Ru3(CO)12] in xylene affords octanuclear [Ru85-S)24-S)(μ3-S)(μ-CNMe2)2(μ-CO)(CO)15] resulting from the double carbon-sulfur bond cleavage of two dithiocarbamate ligands. The structure consists of a tri-edge-bridged square of ruthenium atoms with a further ruthenium atom being bound only to the central bridging atom. Studies suggest that it may be formed via the pentanuclear intermediate [Ru54-S)2(μ-CNMe2)2(CO)11] which is formed in trace amounts.  相似文献   

16.
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   

17.
Twelve new trinuclear complexes containing terminal PH2Ph, edge-bridging PHPh and/or capping PPh ligands have been isolated from the reaction of M3(CO)12 (M = Ru or Os) with PH2Ph in refluxing solvents. HRu3(CO)10(PHPh) (IIIa) crystallises in the monoclinic space group P21/c with a = 8.761(3), b = 11.402(4), c = 22.041(7) Å,β = 98.89(2)°, and Z = 4. The structure was solved by a combination of direct methods and Fourier difference techniques, and refined by blocked-cascade least squares to R = 0.027 for 3676 unique observed intensities. The X-ray analysis shows that one edge of the Ru3 triangle is bridged by a hydride and the PHPh ligand, and that the phosphorus-bound hydrogen atom lies over the metal triangle and the phenyl group away from it. This provides an explanation for the ready formation of the capped species H2Ru3(CO)9(PPh) (Va) on pyrolysis of the edge-bridged complex as opposed to the previously reported conversion of HOs3(CO)10(NHPh) to an orthometallated derivative under similar conditions. An X-ray analysis of H2Ru3(CO)9-(PPh) (Va) confirms the capped geometry. the complex crystallises in the monoclinic space group P21/n with a = 9.323(4), b = 15.110(6), c = 45.267(15) Å,β = 91.84(3)°, and Z = 12. the structure was solved and refined using the same techniques as described previously. The final residual R is 0.061 for 4839 reflections. Some reactions of Va show that the phosphorous cap is difficult to displace and stabilises the molecule with respect to decomposition to non-cluster species.  相似文献   

18.
The first report on the preparation, polymerization, and copolymerization of a nitrosyl-containing vinylcyclopentadienylmetal monomer, (η5-C5H4CHCH2)-Cr(CO)2NO, is described. (η5-Vinylcyclopentadienyl)-dicarbonylnitrosylchromium (A) was prepared in good yield by the acylation of η5-cyclopentadienyl-carbonylnitrosylchromium followed by sodium borohydride reduction of the keto function and acid-catalyzed dehydration. Monomer A homopolymerizes and copolymerizes with styrene, N-vinylpyrrolidone, and vinyl cymantrene in the presence of azo initiators. Reactivity ratios in the copolymerization of A with styrene were r1 = 0.30 and r2 = 0.82 from which the value of e for A was found to be ?1.98. Thus, A is an exceptionally electron-rich monomer.  相似文献   

19.
The reactions between h5-CpFe(CO)2R (R = CH2CHCH2; CH2CMe=CH2; CH2CHCHMe; CH2CHCMe2) and stannous chloride in tetrahydrofuran afford the insertion products h5-CpFe(CO)2SnCl2R. When treated with stannous chloride in methanol or with excess stannous chloride in tetrahydrofuran, h5-CpFe(CO)2CH2CMeCH2 affords primarily h5-CpFe(CO)2SnCl3. The allenyl, 2-butynyl or cationic isobutylene complexes (R = CHCCH2; CH2 CCMe; CH2CMe+2) yield only h5-CpFe(CO)2SnCl3. Stannous iodide reacts with h5-CpFe(CO)2CH2CHCH2 in benzene to form h5-CpFe(CO)2I. Plumbous chloride in methanol fails to react with the above complexes.  相似文献   

20.
The interaction between Cp(CO)2Mn(CCHCOOMe) (I), Cp(CO)2Mn(π-HCCCOOMe) (II), Cp(CO)2Mn(CCCPh2) (III), and Fe2(CO)9 in hexane gives rise to the complexes Cp(CO)2Mn(μ2-CCHCOOMe)Fe(CO)4 (IVa,b) and Cp(CO)2Mn(μ2-CCCPh2)Fe(CO)4 (VIII). The structure of IVb was determined by X-ray analysis. This compound is a binuclear complex with the Fe(CO)4 and Cp(CO)2Mn fragments linked by a FeMn bond and a carbomethoxyvinylidenic ligand. Compound IVa is a geometrical isomer of IVb.  相似文献   

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