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1.
Reaction of [MoCo(CO)5(PPh3)25-C5H5)] (1) with diphenylacetylene in tetrahydrofuran at 50 °C yielded two heterobimetallic compounds, [MoCo(CO)4.(PPh3){μ-PhC ? CPh}(η5-C5H5)] (4) and [MoCo(CO)5{μ-PhC ? CPh} (η5-C5H5)] (5). However, an unexpected product, Co(CO)2(μ-CO)(μ:η24-C4Ph4)Co(CO)2(PPh3) (6), was observed while attempting to grow the crystals for structural determination of 4. The X-ray crystal structure of 6 was determined: triclinic, $ {\rm P}\bar 1 $, a = 11.654(2) Å, b = 12.864(2) Å, c = 13.854(2) Å, α = 89.67(2)°, β = 86.00(2)°, γ= 83.33(2)°, V = 2057.9(6) Å3 Z=2. In 6, two cobalt fragments are at apical and basal positions of the pseudo-pentagonal pyramidal structure, respectively. The electron count for the apical cobalt fragments is 20, which is rather unusual. It is believed that 6 was formed after the fragmentation and recombination of the fragmented species of 4.  相似文献   

2.
The reaction of (η5-C5H5)W(CO)2(NO), 6W, with P(CH3)3 proceeds rapidly at 25°C to give (η5-C5H5)W(CO)(NO)[P(CH3)3], 7W. The rate of formation of 7W was found to be 4.48 × 10?2M?1 [6W] [P(CH3)3] at 25.0°c in THF. In neat P(CH3)3 at ?23°C, 6W is converted to (η1-C5H5)W(CO)2(NO)[P(CH3)3]2, 8W. In dilute solution, 8W decomposes to initially give a 2:1 mixture of 6W and 7W. The mixture is then converted to 7W. The reaction of (η5-C5H5)Mo(CO)(NO), 6Mo, with P(CH3)3 is 6.1 times faster than that of the tungsten analog.  相似文献   

3.
Reaction of MoCo(CO)5(PPh3)25-C5H5) (1a) with trimethylsilylacetylene in tetrahydrofuran at 58° C yielded two acetylene bridged heterobimetallic compounds, MoCo(CO)4(PPh3){μ-HC?CSiMe3}(η5-C5H5) (4) and MoCo (CO)5{μ-HC?CSiMe3}(η5-C5H5)(5). (4) was characterized by mass, infrared, 1H, 13C and 31P NMR spectra. The X-ray crystal structure of (4) was determined:triclinic, P-1, a=8.821(1) Å, b=11.315(3) Å, c=17.029(2) Å, α=70.73(1)°, β=78 .72(1)°, γ=86.10(2)°,V =1573.4(6) Å3, Z=2, R = 3.92%,Rw = 6.06% for 4285 (F > 4σ (F)) observed reflections. The core of this molecule is a quasi-tetrahedron containing Mo, Co and two carbons of acetylene. The triphenylphosphine ligand is attached to cobalt rather than molybdenum center.  相似文献   

4.
Preparation and Structure of Tetrafluoro(η5-pentamethylcyclopentadienyl) Niobium and Tetrafluoro(η5-cyclopentadienyl) Niobium A facile preparation method for (η5-C5Me5)NbF4 3 and (η5-C5H5)NbF4 4 is reported by using AsF3 as a fluorinating agent. Single crystals obtained from AsF3 contain the solvent molecule as well as HF. The composition of the crystal is [(η5-C5Me5)NbF4(AsF3)2]2 · [(η5-C5Me5)NbF4(HF)AsF3]2 5 . The X-ray crystal structure of 5 will be reported. 5 crystallizes triclinic with one furmula in the space group P1 and lattice constants a = 843.1(4), b = 1154.9(6), c = 1910.2(10) pm, α = 91.68(3)°, β = 99.30(3)°, γ = 104.44(2)°.  相似文献   

5.
Crystal structures of a series of manganese(I) complexes containing tripodal ligands were determined. For [η3-{CH3C(CH2PPh2)2(CH2SPh)-P,P′,S}Mn(CO)3]PF6 ( 1 ): a = 10.856(3) Å, b = 19.698(3) Å, c = 17.596(5) Å, β = 96.17(2)°, monoclinic, Z = 4, P21/c, R(Fo) = 0.068, Rw(Fo) = 0.055 for 3617 reflections with Io > 2σ(Io). For [η3-{CH3C(CH2PPh2)(CH2SPh)2-P,P′,S}Mn(CO)3]PF6 ( 2 ): a = 9.890(2) Å, b = 20.403(4) Å, c = 10.269(3) Å, β = 117.44(2)°, monoclinic, Z = 2, P2l, R(Fo) = 0.050, Rw(Fo) = 0.037 for 1760 reflections with Io > 2σ(Io). For [η3-{CH3C(CH2PPh2)2(CH2S)-P,P′,S}Mn(CO)3] ( 4 ): a = 8.191(7) Å, b = 10.495(3) Å, c = 19.858(6) Å, α = 99.61(2)°, β = 96.17(2)°, γ = 92.70(4)°, triclinic, Z = 2, P-I, R(Fo) = 0.048, Rw(Fo) = 0.039 for 2973 reflections with Io > 2σ(Io). There is no significant difference in the bond lengths of Mn-S bonds among three species in their crystal structures [2.325(2) Å in 1; 2.358(4) in 2; 2.380(2) in 4], but the better donating ability of thiolate in complex 4 appears on the lower frequencies of its carbonyl stretching absorptions.  相似文献   

6.
Synthesis and Crystal Structure of the Heterobimetallic Diorganotindichloride (FcN, N)2SnCl2 (FcN, N: (η5‐C5H5)Fe{η5‐C5H3[CH(CH3)N(CH3)CH2CH2NMe2]‐2}) The heterobimetallic title compound [(FcN, N)2SnCl2] ( 1 ) was obtained by the reaction of [LiFcN, N] with SnCl4 in the molar ratio 1:1 in diethylether as a solvent. The two FcN, N ligands in 1 are bound to Sn through a C‐Sn σ‐bond; the amino N atoms of the side‐chain in FcN, N remain uncoordinated. The crystals contain monomeric molecules with a pseudo‐tetrahedral coordination at the Sn atom: Space group P21/c; Z = 4, lattice dimensions at —90 °C: a = 9.6425(2), b = 21.7974(6), c = 18.4365(4) Å, β = 100.809(2)°, R1obs· = 0.051, wR2obs· = 0.136.  相似文献   

7.
The action of SMe2 on the ten-vertex nido-ruthenaborane [6-(η6-C6Me6)RuB9Hl3] ( 1 ) provides a high-yield route to the unsubstituted isocloso-ruthenaborane [1-(η6-C6Me6)RuB9H9] (2). The benzene analogue [1-(η6-C6Me6)RuB9H9] is prepared similarly. By contrast, reaction of (1) with PhNH2 gives a variety of B-phenylamino isocloso derivatives, including orange crystals of [1-(η6-C6Me6)-2-(PhNH)-isocloso-1-RuB 9 H8] ( 3 ), red-orange [1-(η6-C6Me6)-2,3-(PhNH)2-isocloso-1-RuB9H7] ( 4 ) and dark-red [1-(η6-C6Me6)-5,6,7-(PhNH)3-isocloso-1-RuB9H6] ( 5 ). Detailed 1H and 11B nmr properties of these various compounds are described. The structure of ( 3 ) has been established by a single-crystal X-ray diffraction study of the solvate [1-(η6-C6Me6)-2-(PhNH)-isocloso-1-RuB9H8] · 1/2 CH2Cl2; the crystals were monoclinic, space group C2/c, with a = 1895.1(3), b = 1556.6(3), c = 1716.4(3) pm, β = 104.37(1)° and z = 8.  相似文献   

8.
The crystal stuctures of [(η5-C5H5)Fe(CO)2]2(CH2)n, n = 3 and 4, have been determined.[(η5-C5H5)Fe(CO)2]2(CH2)3: a = 21.20, b = 10.39, c = 7.88Å, β = 101.6°, U = 1699Å3, C2/c, Z = 4, R = 0.059, 1036 observed data.[(η5-C5H5)Fe(CO)2]2(CH2)4: a = 7.63, b = 10.54, c = 21.87Å, β = 96.4°, U= 1748Å3, P21/c, Z = 4, R = 0.051, 1418 observed data.In each compound the iron atoms are joined by simple chains of sigma bonded CH2 groups. Bond lengths are similar in both: mean Fe-CO 1.75, C-O 1.15, FeC(cp) 2.11, FeCH2 2.08, (cp)CC(cp) 1.41, CH2CH2 1.55Å. The (CH2)3 compound retains a 2-fold axis of symmetry in the crystal. The (CH2)4 compound has no imposed symmetry, but closely approximates centrosymmetry. The effects of molecular symmetry on the IR spectrum between 2100 and 1900 cm-1 are discussed. The13C and1H (270 MHz) NMR spectra in solution are shown to be consistent with the structures found crystallographically.  相似文献   

9.
The 2,6-di-t-butyl-4-methylphenoxo ligand (ArO?) is ambidentate, giving rise to the O-bonded 15-electron d1 [Ti(η-C5H5)2OAr] and the η5 -[C(2)-C(6)]-bonded 18-electron d8 complex [Rh(ArO-η5)(PPh3)2], obtained from [{Ti(η-C5H5)2Cl}2]-LiO Ar and [Rh{N(SiMe3)2}(PPh3)2]-ArOH, respectively; the average TiC(η) distance is 2.362(10) Å, TiO 1.892(2) Å, and O:C(of Ar) 1.352(3) Å, and TiOC 142.3(2)°; in the RhI complex, C(2)C(6) are coplanar (with CC(av.) 1.38(2) Å). C(1)O 1.28 Å, and Rh to C(2) C(6) bond lengthsare in the range 2.19–2.65 Å.  相似文献   

10.
Synthesis and Crystal Structures of [P(C6H5)4][1-(NH3)B10H9] and Cs[(NH3)B12H11] · 2CH3OH The reduction of [1-(NO2)B10H9]2? with aluminum in alkaline solution yields [1-(NH3)B10H9]? and by treatment of [B12H12]2? with hydroxylamine-O-sulfonic acid [(NH3)B12H11]? is formed. The crystal structures of [P(C6H5)4][1-(NH3)B10H9] (triclinic, space group P1 , a = 7.491(2), b = 13.341(2), c = 14.235(1) Å, α = 68.127(9), β = 81.85(2), γ = 86.860(3)°, Z = 2) and Cs[(NH3)B12H11] · 2CH3OH (monoclinic, space group P21/n, a = 14.570(2), b = 7.796(1), c = 15.076(2) Å, β = 111.801(8)°, Z = 4) reveal for both compounds the bonding of an ammine substituent to the cluster anion.  相似文献   

11.
Two silyl-zirconium compounds (η-C5H5)2ZrCl[Si(CH3)3] (I) and (η-C5H5)2-Zr[Si(CH3)3]2 (II), have been prepared by the reaction of (η-C5H5)2ZrCl2 with Hg[Si(CH3)3]2 in refluxing benzene. While I is unreactive toward 1-hexyne (55–60°C) and CO (350 psi), the zirconiumsilicon bond is cleaved by electrophiles such as Cl2, HgCl2, and AlCl3.  相似文献   

12.
The η2‐thio‐indium complexes [In(η2‐thio)3] (thio = S2CNC5H10, 2 ; SNC4H4, (pyridine‐2‐thionate, pyS, 3 ) and [In(η2‐pyS)22‐acac)], 4 , (acac: acetylacetonate) are prepared by reacting the tris(η2‐acac)indium complex [In(η2‐acac)3], 1 with HS2CNC5H10, pySH, and pySH with ratios of 1:3, 1:3, and 1:2 in dichloromethane at room temperature, respectively. All of these complexes are identified by spectroscopic methods and complexes 2 and 3 are determined by single‐crystal X‐ray diffraction. Crystal data for 2 : space group, C2/c with a = 13.5489(8) Å, b = 12.1821(7) Å, c = 16.0893(10) Å, β = 101.654(1)°, V = 2600.9(3) Å3, and Z = 4. The structure was refined to R = 0.033 and Rw = 0.086; Crystal data for 3 : space group, P21 with a = 8.8064 (6) Å, b = 11.7047 (8) Å, c = 9.4046 (7) Å, β = 114.78 (1)°, V = 880.13(11) Å3, and Z = 2. The structure was refined to R = 0.030 and Rw = 0.061. The geometry around the metal atom of the two complexes is a trigonal prismatic coordination. The piperidinyldithiocarbamate and pyridine‐2‐thionate ligands, respectively, coordinate to the indium metal center through the two sulfur atoms and one sulfur and one nitrogen atoms, respectively. The short C‐N bond length in the range of 1.322(4)–1.381(6) Å in 2 and C‐S bond length in the range of 1.715(2)–1.753(6) Å in 2 and 3 , respectively, indicate considerable partial double bond character.  相似文献   

13.
The crystal and molecular structure of the complex Th[η5-(CH3)5C5]2[CH2-Si(CH3)3]2, which undergoes facile intramolecular cyclometalation to the thoracyclobutane Th[η5-(CH3)5C5]2(CH2)2Si(CH3)2, is reported. While the Th[η5-(CH3)5C5]2 ligation is unexceptional, the Th[CH2Si(CH3)3]2 fragment is highly unsymmetrical having Th-C (corresponding angle Th-C-Si) 2.51(1) Å (132.0(6)°) and 2.46(1) Å (148.0(7)°). This conformation, which appears to result from severe intramolecular non-bonded contacts, allows a methyl hydrogen atom of one CH2Si(CH3)3 ligand to approach within ca. 2.3 Å of the α-carbon atom of the other CH2Si(CH3)3 ligand.  相似文献   

14.
Coordination Chemistry of P-rich Phosphanes and Silylphosphanes. XVI [1] Reactions of [g2-{P–PtBu2}Pt(PPh3)2] and [g2-{P–PtBu2}Pt(dppe)] with Metal Carbonyls. Formation of [g2-{(CO)5M · PPtBu2}Pt(PPh3)2] (M = Cr, W) and [g2-{(CO)5Cr · PPtBu2}Pt(dppe)] [η2-{P–PtBu2}Pt(PPh3)2] 4 reacts with M(CO)5 · THF (M = Cr, W) by adding the M(CO)5 group to the phosphinophosphinidene ligand yielding [η2-{(CO)5Cr · PPtBu2}Pt(PPh3)2] 1 , or [η2-{(CO)5W · PPtBu2}Pt(PPh3)2] 2 , respectively. Similarly, [η2-{P–PtBu2}Pt(dppe)] 5 yields [η2-{(CO)5Cr · PPtBu2}Pt(dppe)] 3 . Compounds 1 , 2 and 3 are characterized by their 1H- and 31P-NMR spectra, for 2 and 3 also crystal structure determinations were performed. 2 crystallizes in the monoclinic space group P21/n (no. 14) with a = 1422.7(1) pm, b = 1509.3(1) pm, c = 2262.4(2) pm, β = 103.669(9)°. 3 crystallizes in the triclinic space group P1 (no. 2) with a = 1064.55(9) pm, b = 1149.9(1) pm, c = 1693.2(1) pm, α = 88.020(8)°, β = 72.524(7)°, γ = 85.850(8)°.  相似文献   

15.
Crystal Structure of Tetraphenylphosphonium Monothiocyanatohydro-closo-Decaborate, [P(C6H5)4]2[2-(SCN)B10H9] · CH3CN The X-ray structure determination of [P(C6H5)4]2[2-(SCN)B10H9] · CH3CN (monoclinic, space group P21/n, a = 10.6040(10), b = 13.8880(9), c = 33.888(3) Å, β = 94.095(8)°, Z = 4) reveals the S coordination of the SCN substituent with a B? S distance of 1.913(6) Å and a B? S? C angle of 105.3(3)°. The SCN group is nearly linear (178.2(7)°).  相似文献   

16.
Tris)(η 5-cyclopentadienyl-μ-carbonyl-iron)-μ3-nitrosyl cluster was obtained from the reaction of cyclopentadienyl dicarbonyliron dimer with nitrogen monoxide in xylene. The cluster was characterized by elemental analyses, IR, MS and 1H NMR. The crystal structure of [(η5-C5H5)(μ-CO)Fe]3(μ3-NO).C4H8O was determined by X-ray diffraction analysis. It crystallizes in the orthorhombic space group Pnma, a=9.053(2), 6=10.545(2), c=22.525(4) A, V=2150.3(7) A3, Z=4,Dc=1.68 g.cm-3; structure solution and refinement based on 1141 reflections with I > 3.0 (I) (MoKa, A=0.71073 A) converged at R=0.0540. The infrared absorption band at 1325 cm-1 of the μ3-NO in the cluster, which is red shifted, shows that μ3-NO is activated.  相似文献   

17.
One of the main products of oxidation of (η5-C5-H5)2Fe2(CO)3Ge(CH3)2 by air has been shown to be [(η5-C5H5)(CO)2FeGe(CH3)2]2O. The infrared, NMR and mass spectra are consistent with this formula and the detailed structure has been established by X-ray crystallography. In polar solvents the NMR suggests the existence of major and minor conformers interconverting only slowly on the NMR time scale at ≈ 25°. The X-ray diffraction study has shown the compound to consist of two (η5-C5H5)(CO)2FeGe(CH3)2 moieties joined by a bridging oxygen atom. Two rotational isomers are present in the unit cell in a disordered fashion. Some pertinent average distances and angles are: FeGe, 2.372 Å; GeO, 1.785 Å; GeOGe′, 134°. The compound crystallizes in the monoclinic system, space group P21/n, with a 8.056(2), b 12.506(2), c 22.631(3) Å, β 98.01(1)°, dcalc 1.692 g cm?3. Counter data were collected using Mo-Kα radiation. The 1780 reflections above background were used in least-squares refinement which converged at R1 = 0.051 and R2 = 0.068.  相似文献   

18.
The crystal and molecular structure of Ti(n5-C5H4CH3)2S5has been determined by X-ray diffraction studies. The substance crystallizes in the monoclinic crystal system [a = 6.8642(5), b = 16.507(1), c = 13.074(1) Å, β = 82.407(3)°, space group P21/n, Z = 4]. The geometry about the titanium atom is a distorted tetrahedron, with a (centroid)-Ti-(centroid) angle of 131.29° and a S? Ti? S angle of 93.38°. The six-membered ring TiS5 has a cyclohexane-like chair configuration. The structural results are compared to those for similar type titanium complexes.  相似文献   

19.
The complex (η5-C5H4CH3)Mn(NO)(PPh3)I has been prepared by the reaction of NaI with [(η5-C5H4CH3)Mn(NO)(CO)(PPh3)]+ and also by the reaction of [(η5-C5H4CH3)Mn(NO)(CO)2]+ with NaI followed by PPh3. This iodide compound reacts with NaCN to yield (η5-C5H4CH3)Mn(NO)(PPh3)CN which is ethylated by [(C2H5)3O]BF4 to yield [(η5-C5H4CH3)Mn(NO)(PPh3)(CNC2H5)]+. Both [(η5-C5H4CH3)Mn(NO)(CO)2]+ and [(η5-C5H4CH3)Mn(NO)(PPh3)(CO)]+ react with NaCN to yield [(η5-C5H4CH3)Mn(NO)(CN)2]?. This anion reacts with Ph3SnCl to yield cis-(η5-C5H4CH3)Mn(NO)(CN)2SnPh3 and with [(C2-H5)3O]BF4 to yield [(η5-C5H4CH3)Mn(NO)(CNC2H5)2]+. The reaction of (η5-C5-H4CH3)Mn(NO)(PPh3)I with AgBF4 in acetonitrile yields [(η5-C5H4CH3)Mn-(NO)(PPh3)(NCCH3)]+. The complex (η5-C5H4CH3)Mn(NO)(CO)I, produced in the reaction of [(η5-C5H4CH3)Mn(NO)(CO)2]+ with NaI, is not stable and decomposes to the dimeric complex (η5-C5H4CH3)2Mn2(NO)3I for which a reasonable structure is proposed. Similar dimers can be prepared from the other halide salts. The reaction of (η7-C7H7)Mo(CO)(PPh3)I with NaCN yields (η7-C7-H7)Mo(CO)(PPh3)CN which is ethylated by [(C2H5)3O]BF4 to yield [(η7-C7H7)-Mo(CO)(PPh3)(CNC2H5)]+. The interaction of this molybdenum halide complex with AgBF4 in acetonitrile and pyridine yields [(η7-C7H7)Mo(CO)(PPh3)-(NCCH3)]+ and [(η7-C7H7)Mo(CO)(PPh3)(NC5H5)]+, respectively. Both (η5-C5-H4CH3)Mn(NO)(PPh3)I and (η7-C7H7)Mo(CO)(PPh3)I are oxidized by NOPF6 to the respective 17-electron cations in acetonitrile at ?78°C but revert to the neutral halide complex at room temperature. This result is supported by electrochemical data.  相似文献   

20.
The negative ion mass spectra of a series of monomeric and dimeric η5-cyclopentadienyl transition metal carbonyls have been examined. The base peak in the case of the monomeric compounds (η5-C5H5)V(CO)4, (η5-C5H5)Mn(CO)3 and (η5-CH3C5H4)Mn(CO)3 arises from a reductive decarbonylation of the parent molecule—the resulting radical anion [M–CO]? is formally isoelectronic with the molecular cations [M]? observed in the positive ion mass spectra of these compounds and subsequently undergoes successive decarbonylations to the ‘aromatic’ cyclopentadienyl anions. For the compound (η5-C5H5)Co(CO)2, however, a molecular anion was observed as the base peak which has been formulated as [(η3-C5H5)Co(CO)2]? in the light of considerations based on the rare gas rule. As expected, the dimeric molecules [(η5-C5H5)M(CO)3]2 (where M = Cr or Mo) and [(η5-C5H5)Fe(CO)2]2 (and its methyl analogue) undergo reductive cleavage of their metal-metal bonds to give the anions [(η5-C5H5)M(CO)3]? and [(η5-C5H5)Fe(CO)2]? as the base peaks in their negative ion mass spectra. The dimeric nickel compound [(η5-C5H5)Ni(CO)]2, however, reductively decarbonylates to the [M-CO]? radical anion as its predominant fragmentation in the gas phase. Very low abundances of [(η5-C5H5)Fe(CO)2] and [(η5-CH3C5H4)Fe(CO)2] were also observed.  相似文献   

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