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1.
The heteronuclear Cp2Nb(CO)(μ-CO)Mn(CO)4 (I), Cp2Nb(CO)(μ-H)Ni(CO)3 (II) and [Cp2Nb(CO)(μ-H)]2M(CO)4 (III, M = Mo;IV, M = W) complexes were prepared by reaction of Cp2NbBH4/Et3N with Mn2(CO)10 in refluxing toluene, direct reaction of Cp2NbBH4 with Ni(CO)4 in ether, and reaction of Cp2NbBH4/Et3N with M(CO)5. THF complexes (M = Mo or W) in THF/benzene mixture. An X-ray investigation of compounds I–III was performed. It is established that in I the bonding between Mn(CO)5 and Cp2Nb(CO) (with the angle (α) between the ring planes being 44.2(5)°) fragments takes place via a direct NbMn bond (3.176(1) Å) and a highly asymmetric carbonyl bridge (MnCco 1.837(5) Å, NbCco 2.781(5) Å). On the other hand, in complex II the sandwich Cp2Nb(CO)H molecule (angle α = 37.8°) is combined with the Ni(CO)3 group generally via a hydride bridge (NbH 1.83 Å, NiH 1.68 Å, NbHNi angle 132.7°) whereas the large Nb?Ni distance, 3.218(1) Å, shows the weakening or even absence of the direct NbNi bond. Similarly, in complex III two Cp2Nb(CO)H molecules (with α angles equal to 41.4 and 43.0°, respectively) are joined to the Mo(CO)4 group via the hydride bridges (NbH 1.83 and 1.75 Å and MoH 2.04 and 2.06 Å) producing a cis-form. The direct NbMo bonds are probably absent, since the Nb?Mo distances are rather long (3.579 and 3.565 Å). The effect of electronic and steric factors on the structure of heteronuclear niobocene carbonyl derivatives is discussed.  相似文献   

2.
Niobocene trimethylacetate Cp2Nb(OOCCMe3) (I) does not react with usual n-donors (pyridine and triphenylphosphine), but readily adds a π-acceptor molecule of diphenylacetylene (tolane) in benzene to form Cp2Nb(OOCCMe3)(π-Ph2C2) · 0.5 C6H6 (II). The structures of the diamagnetic complexes I and II have been determined by an X-ray diffraction study. These molecules represent wedge-like sandwiches wit dihedral angles between cyclopentadienyl ligands equal to 44.4 and 50.7°, and average NbC distances of 2.39 and 2.44 Å, respectively. The bisector plane of I contains the chelate trimethylacetate group (NbO bond lenghts 2.23 and 2.24 Å) and that of II contains the coordinated tolane molecule and the oxygen atom of the terminal trimethylacetate ligand (NbO 2.16, NbC 2.18 and 2.19, CC 1.29 Å, PhCC angles 141 and 146°). An unusually large splitting of OCO stretching frequencies is observed in the IR spectrum of I (1652?1305 = 347 cm?1). Structural characteristics of the coordinated CC triple bond in II are similar to those found in Cp(π-Ph4C4)Nb(CO)(π-Ph2C2) studied earlier. The role played by the NbIII lone pair in I and II is discussed.  相似文献   

3.
Interaction of Cp2TaH3 (Cp = η5-C5H5) with MenSnCl4-n (n = 0–2) in benzene leads to heterometallic complexes with the composition Cp2TaH2(SnMenCl3-n). The complex Cp2TaH2(SnMe2Cl) can be obtained only when the HCl eliminated is fixed with triethylamine. The Mössbauer, IR and 1H NMR spectroscopy data show that these compounds have a symmetrical structure with two terminal TaH bonds and a central TaSn σ-bond. The Cp2TaH2(SnMeCl2) complex was studied by X-ray analysis. The crystals of this compound are rhombic with the unit cell parameters a 7.7361(1), b 10.552(1), c 16.943(3) Å, space group Pcmn, R = 0.0264, Rw = 0.0278. The molecule Cp2TaH2(SnMeCl2) possesses a mirror symmetry plane which passes through the centers of the Cp cycles and the Ta, Sn, and C atoms of the methyl group: d(TaSn) 2.752(1), d(Ta-H) 1.61(10) Å. On the basis of spectroscopic and structural data the TaSn bond is concluded to have increased s character.  相似文献   

4.
CpFe(CO)2CH3 reacts with Cp2NbH made from Cp2NbBH4 and Et3N to give Cp2NbH(μ-C5H4)Fe (III). As shown by X-ray diffraction, III contains the Cp2NbH sandwich fragment with a 46.8° angle between the rings linked with the dicarbonyliron moiety by the NbFe bond (2.968 Å), observed for the first time, and a cyclopentadienyl bridge C5H4, involving the NbC. σ-bond (2.189 Å) and C5H4Fe π-bond (2.085 Å). A probable reaction scheme leading to III and general patterns of formation of other heterobinuclear derivatives of sandwich complexes Cp2MLM′(L′)n are discussed. The importance of steric effects due to nonbonded interligand interactions between the M′(L′)n fragment and the sandwich system is emphasized. Increase of steric strain in the binuclear system facilitates its unusual transformations.  相似文献   

5.
By heating the mixture of solutions of (CpCrSCMe3)2S (I) in benzene and [CpNi(CO)]2 in pentane followed by chromatography on alumina, dark cherry-red needles of the heteronuclear cluster (Cp4Cr2Ni2)(μ3-S)24-S) (II) were obtained, whose structure was established on the basis of a complete X-ray analysis. The crystals are rhombic, spatial group Pbca; a = 12.07(1), b = 18.50(2), c = 17.36(1) Å, Z = 8. The metallic skeleton of II has the “butterfly” or “metal-chain” structure with a direct CrCr bond (2.62(1) Å) and inequivalent CrNi bonds, 2.86(1) and 2.64(1) Å, while the Ni·Ni distance is nonbonding (4.34(1) Å). The NiCr2 triangle planes produce a dihedral angle of 127°. The two μ3-bridged sulfur atoms locate under these triangles whereas the third sulfur atom is μ4-bridging coordinating all four metal atoms in the cluster with mean NiS and CrS distances of 2.29(1) and 2.25(1) Å, respectively. The Ni2S3 group is planar and almost perpendicular to the CrCr axis. Complex II is anti-ferromagnetic and its exchange parameter — 2J (418 cm-1) is close to that found for the initial binuclear complex I (— 2J = 430 cm-1 with a CrCr bond length of 2.689(8) Å). The role of the Ni coordination number in the generation of II is discussed.  相似文献   

6.
7.
Dimethylbis(2-pyridinethiolato-N-oxide)tin(IV), Me2Sn(2-SPyO)2, crystallizes in space group P21/c with a 9.877(3), b 11.980(4), c 13.577(3) Å, β 109.1(2)° and Z = 4. The structure was refined to RF = 0.036 for 2263 Mo-Kα observed reflections. The coordination geometry at tin is a skew-trapezoidal bipyramid, with the oxygen [SnO 2.356(3), 2.410(4) Å] and sulfur [SnS 2.536(1), 2.566(1) Å] atoms of the chelating groups occupying the trapezoidal plane and the methyl groups [SnC 2.106(6), 2.128(7) Å] occupying the apical positions. The methyl-tin-methyl skeleton is bent [CSnC 138.9(2)°]. The SSnS angle is 77.8(1)°, but the OSnO angle is opened to 136.7(1)° to accommodate the intruding methyl groups. The carbontincarbon angles predicted from quadrupole splitting (119mSn Mössbauer) and one-bond 119Sn13C coupling constant (solution 13C NMR) data agree closely with the experimental value.  相似文献   

8.
A crystal structure study of nBu2Sn(O2CCH2SC6H5)2 reveals the compound to be monomeric with the tin atom situated on a crystallographic 2-fold axis in a skew-trapezoidal bipyramidal geometry. The basal plane is defined by two asymmetrically chelating carboxylate groups; SnO 2.134(4) and 2.559(5) Å and the nBuSnnBu angle is 140.7(2)°. The sulphur atoms do not participate in any significant interactions to the tin atom. Crystals are monoclinic with space group C2 and unit cell dimensions a 18.668(6), b 15.761(6), c 5.106(5) Å, β 117.55(5)°; Z = 2. The structure was refined by a full-matrix least-squares procedure to final R = 0.034 and Rw = 0.033 for 1294 reflections with I ≥ 2.5σ(I).  相似文献   

9.
Volatile iridium(I) complexes [Ir(cod)Cpx] (Cpx = pentamethylcyclopentadienyl Cp*, ethylcyclopentadienyl CpEt, cod = 1,5-cyclooctadiene) are synthesized and characterized by IR and NMR spectroscopy. The [Ir(cod)Cp*] complex is a solid and the [Ir(cod)CpEt] complex is a liquid (SATP). The XRD method is used to determine the structure of the [Ir(cod)Cp*] complex: chemical formula C18H27Ir, space group P21/c, a = 8,4418(2) Å, b = 9,4764(3) Å, c = 19.2682(5) Å, β = 96.128(1) °, V = 1532.61(7) Å3, Z = 4, d calc = 1.888 g/cm3, μ = 8.697 mm–1. The cyclopentadienyl ligand is η5-type coordinated; 1,5-cyclooctadiene have a cis-cis conformation and is η4-type coordinated. The thermal properties of the complexes are studied by thermogravimetry.  相似文献   

10.
The crystal structure of NbS3 was determined from single-crystal diffractometer data obtained with Mo radiation. The compound is triclinic, space group P1, with: a 4.963(2) Å; b = 6.730(2) Å; c = 9.144(4)Å; α = 90°; β = 97.17(1)°; γ = 90°. The structure is closely related to the ZrSe3 structure type; it shows that the compound can be formulated as Nb4+(S2)2?S2?, in agreement with XPS spectra. The main difference with ZrSe3 is that the Nb atoms are shifted from the mirror planes of the surrounding bicapped trigonal prisms of sulfur atoms to form NbNb pairs (NbNb = 3.04 Å); this causes a doubling of the b axis relative to ZrSe3 and a decrease of the symmetry to triclinic.  相似文献   

11.
Reactions of the tetrahydrofuran adduct Re2Br2(CO)6(THF)2 with some phosphorous- and nitrogen-containing donors under mild conditions are reported, which led to the formation of substituted products of tricarbonylrhenium(I). Bromide abstraction from the THF adduct by secondary amines and CS2 produced the dithiocarbamato derivatives Re(S2CNR2)(CO)3(HNR2) whose behaviour in solution with CO was also investigated. Mass spectral data for some of the substituted products have been measured. The title compound crystallizes in the space group P21/n with cell constants a = 8.661(2), b = 11.251(3), c = 11.424(3) Å and β = 110.36(2)°, U = 1043.67 Å3 and Dcalc = 2.686 g cm?3, Z = 2. The molecule consists of a planar Re2Br2 moiety, as demanded by symmetry. The two THF groups are on opposite sides of this plane and the three CO groups around each rhenium atom are arranged in a fac arrangement. The unique ReBr distances are 2.642(5) and 2.644(4)Å, while the ReO distance is 2.129(31) Å. The ReBrRe and BrReBr angles are 97.3(2) and 82.7(1)°, respectively. The Re?Re nonbonding distance is 3.967(3) Å. The THF ligands consist of a nearly planar C4 fragment (maximum deviation from planarity 0.06 Å), while the oxygen is 0.348 Å out of that plane, the angle defined by the C4 plane and the COC fragment of the THF ligand being 24.99°. Final values of the discrepancy indices are R(F) = 0.074 and Rw(F) = 0.095.  相似文献   

12.
The crystal structure of Ph3SnNCS has been determined by single crystal X-ray diffraction. The crystals are monoclinic, P21, a = 19.02(3), b = 11.67(2), c = 15.49(2)Å;, β = 95.64(10)°, Z = 8. The molecules are arranged in infinite zig-zag S…SnNCS…Sn&.sbnd; chains similar to those in Me3SnNCS, but with slightly longer SnN, shorter SnS bonds, and almost planar SnC3 units. Principal mean bond lengths and angles are: SnN, 2.22(5); NC, 1.17(8); CS, 1.58(7); SSn, 2.92(1); SnC, 2.09(3); CC, 1.38(2)Å; SnNCm 161(4); CSSn, 97(3); SSnN, 175(3) and CSnC, 119.8(1.5)°.  相似文献   

13.
Reductive condensation of Pd(OAc)2 in dioxane in the presence of CO and PR3 (R = Et, Bun) with addition of CF3COOH leads to the formation of decanuclear Pd103-CO)42-CO)8(PBun3)6 (I) and Pd10(CO)14(PBun3) (II) at Pd(OAc)2:PR3 molar ratios of 1:4–1:10 and 1:1.5–1:2.5, respectively. The use of CH3COOH instead of CF3COOH results in tetranuclear clusters Pd4(CO)5(PR3)4 (III) and Pd42-CO)6(PBun3) (IV). I ? III and III → IV transformations occur in organic media. The structures of I (space group P21/n, Z = λMo, 12125 independent reflections, R = 0.047) and IV (Pz:3, Z = λMo, 3254 reflections, R = 0.098) were established by X-Ray diffractions analysis. Cluster I is a 10-vertex Pd10 polyhedron, an octahedron with four unsymmetrically centered non-adjacent faces. The average PdPd distances in the octahedron are 2.825 Å, in the eight short Pdoct.Pdcap. bonds with the “equatorial” Pd atoms of the inner octahedron, bridged by the μ2-CO ligands, are 2.709 Å, and in the four elongated (without bridging CO groups) bonds with the apical Pd atoms of the octahedron are 3.300–3.422 Å. The PBun3 ligands are coordinated to the apical Pd atoms and the capping atoms (PdP 2.291–2.324 Å). Cluster IV is tetrahedral, with the CO ligands symmetrically bridged; PdPd 2.778–2.817; PdP 2.232–2.291; PdC 2.06 Å (average).  相似文献   

14.
The title compound, C58H52Sn3, belongs to the triclinic space group P1, with a 10.165, b 13.365, c 18.670 Å, α 96.28, β 93.88, γ 103.15°, V = 2443.8 Å3, fw = 1105.1, Z = 2, Dcalc 1.501 g cm?3, m.p. 206.5–208°C, λ(Mo-Kα) 0.71069 Å. The structure was refined on 2684 nonzero reflections to an R factor of 0.044. The crystal contains molecules in which the (SnCH2)3CH core possesses an approximate C3 symmetry. The three SnC(H2) bonds are gauche to the C(4)-H bond. Repulsive interactions involving the bulky Ph3Sn substituents lead to large SnC(H2)C(H) angles (av. 117.3°), whereas the C(H2)C(H)C(H2) angles at the tertiary carbon average 111.3°. Little distortion of the Ph3Sn groups themselves is present, since the PhSnPh angles (av. 109.8°) are almost equal to the C(H2)SnPh angles (av. 109.9°). The molecule as a whole has no symmetry because the aromatic rings in the three Ph3Sn groups have different orientations. The phenyl groups create a pocket in the middle of the molecule which encloses and shields the tertiary hydrogen atom. The resulting inaccessibility of this hydrogen accounts in part for the low reactivity of the title compound in redox reactions.  相似文献   

15.
The preparations and properties are described of novel anionic and neutral mononuclear biimidazolate (biim), bibenzimidazolate (bibzim), or tetramethylbiimidazolate (tmbiim) manganese(I) and molybdenum(II) complexes of the type [Et4N][Mn(CO)2L2(bibzim)] (L = P(OEt)3); [Et4N][Mo(η5-C5H5)(CO)2-(N)2] ((N)22− = biim2−, bibzim2− tmbiim2−); [Mn(CO)4−nLn{H(N)2}] (n = 1; H(N)2 Hbibzim; L = P(OMe)3, PEt3), (n = 2; H(N)2 = Hbiim, Hbibzim; L = P(OPh)3, P(OMe)3, P(OEt)3, P(OiPr)3; [Mo(η5-C5H5)(CO)2{H(N)2}] (H(NN)2 = Hbiim, Hbibzim, Htmbiim, in which the heterocyclic anions act as bidentate chelate groups. Treatment of the anionic complexes with MeI gives neutral derivatives of general formula [Mn(CO)2L2(Mebibzim)] (L = P(OMe)3, P(OEt)3) and [Mo(η5-C5H5)(CO)2{Me(N)2}] (Me(N)2 = Me-biim, Mebibzim, Metmbiim. Cationic manganese(I) complexes of the type [Mn(CO)4−nLn{H2(N)2}][ClO4 (n = 1; H2 (N)2 = H2bibzim; L = P(Ome)3, PEt3), (n = 2; H2(N)2 = H2biim, H2bibzim; L = P(OPh)3, P(OMe)3, P(OEt)3, P(OiPr)3) have also been obtained by treating the corresponding neutral complexes with HClO4. The structures of the complexes have been elucidated by molecular weight determinations, conductance data, and IR spectroscopy.  相似文献   

16.
An X-ray diffraction study has shown that Sn atoms in octabutyl-μ-dichloro-μ3-dioxodichlorotetratin(IV) have distorted trigonal bipyramidal geometry with cis-equatorial butyl groups. Sn(1)C(but) and Sn(2)C(but) bonds are 2.077(21), 2.111(26) and 2.097(23), 2.114(22) Å, respectively. The distances of the triply-bridging O atom from Sn atoms are 2.151(9), 2.018(9) and 2.069(9) Å, and those of the bridging Cl atom are 2.666(5) and 2.831(6) Å. The distance Cl(term)Sn(2) is 2.426(5) Å. Refinement of the structure, based on 1828 observed reflections, converged to an R factor of 0.049 and a weighted R of 0.053. Crystal data for the compound are: a 13.672(6), b 19.529(9), c 8.999(2) Å, β 102.66(3) °, space group P21/c, Z = 2, Mr = 1105.49 for [Sn4(C4H9)8Cl4O2], V 2344(2) Å3, Dx 1.464 gcm−3, F(000) = 1096, λ(Mo-Kα) 0.71069 Å,μ 22.1 cm−1 and T 293 K.  相似文献   

17.
The molecular structures of the L-menthyl ester of S-α-bromomercuriphenyl-acetic acid, diastereomer II, [α]20D ?18°, and of the related L-menthyl ester of α-bromobis(triphenylphosphine)platinummeruriphenylacetic acid, VI, have been investigated by the X-ray method. Insertion of L2Pt carbenoid appears to occur into the HgBr bond in II and two phosphine ligands in the product VI occupy cis positions in a planar square around the platinum atom. The HgPt distance is 2.50 Å; there is intermolecular HgBr coordination in II, the distance being 3.23 Å.  相似文献   

18.
It has been shown for the first time that the reaction of bi-valent tin acetyl-acetonate with palladium carbonylphosphine clusters, Pd4(CO)5(PPh3)4 (I), Pd4(CO)5(PEt3)4 (II) and Pd3(CO)3(PPh3)4 (III), results in the formation of heterometal pentanuclear clusters of general formula Pd3Sn2(acac)4(CO)2(PR3)3; R  Ph (IV), Et (V). X-ray analysis of Pd3Sn2(acac)4(CO)2(PPh3)3 at 20°C (λ(Mo), 4396 reflections, space group P21/n, Z = 4, R = 0.037) shows that IV in the form of the crystalline hydrate, Pd3Sn2(acac)4(CO)2(PPh3)3 · χH2O (χ ∼ 1), contains a distorted “propeller”-shaped Pd3Sn2 metal frame with PdSn distances of 2.679–2.721(1) Å; two short PdPd bonds, 2.708 and 2.720(1) Å, bridged by μ2-CO ligands, and an elongated central Pd(1)Pd(2) bond of 2.798 Å. Sn atoms have distorted octahedral coordination, the dihedral angles formed by Pd3 moieties and two Pd2Sn triangles are 127.6 and 106.5°; and the angle between Pd2Sn moieties is 126.0°.  相似文献   

19.
The structure of a titanium aluminium hydride complex of composition [(C5H5)2TiAlH4]2(CH3)2NC2H4N(CH3)2C6H6 has been determined by X-ray diffraction. The complex forms triclinic crystals with unit cell dimensions a = 8.406(2), b = 10.117(2), c = 11.269(3) Å; α = 112.01(2)°, β = 109.25(2)°, γ = 87.04(2)°, space group P1, Z = 2 and density d = 1.21 g/cm3. The structure was refined to give a discrepancy index R = 0.056. The crystals are composed of centrosymmetric molecules of (Cp2TiAlH4)2TMEDA (Cp = η5-cyclopentadienyl) and molecules of crystal benzene. Two moieties of Cp2TiH2AlH2 are linked by a tetramethylethylenediamine molecule (rAlN 2.11 Å). The aluminium atom is bonded to a titanium atom by a double hydride bridge (rAlH b = 1.8, 1.6 Å, rTiH b = 1.6 Å), and has trigonal bipyramidal stereochemistry, [H4N] (rAlH t = 1.6 Å).  相似文献   

20.
Complexes of the general formula HM(CO)n(oligophos) (M = V, n = 2; M = Nb, n = 3 and 2; M = Ta, n = 3) have been prepared by ion exchange on silica gel from their ionic precursors [Et4N][M(CO)4,3(oligophos)] (n = 3) or by UV irradiation of HM(CO)n+1(oligophos) (n = 2). The new compounds, including fac-[Et4N]-[Nb(CO)3PPh(CH2CH2PPh2)2] and cis-[Et4N][Ta(CO)4PPh(CH2CH2PPh2)2], are characterized by their IR (ν(CO)), 1H (hydride), 31P and metal (51V and 93Nb) NMR spectra.  相似文献   

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