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1.
3-(2-fluorophenyl)-1-(3-nitrophenyl)triazene reacts with mercury(II) acetate in tetrahydrofuran in the presence of 2,2′-bipyridilamine to give yellow crystalline blocks of polymeric {HgII[NNN(PhR)2]2}n (R = NO2, F). The new triazenide complex belongs to the triclinic space group . In a molecule of {HgII[NNN(PhR)2]2} two deprotonated 1,3-diaryl-substituted triazenide ligands are coordinated in an opposite way to one Hg(II) ion by means of primary and secondary bonds. The Hg(II) ions are placed on the inversion centers of translation operated {Hg[NNN(PhR)2]2} moieties which are stacked along the crystallographic a-axis forming infinite unidimensional chains linked through metalocene alike Hg-η22-arene π-interactions.  相似文献   

2.
Treatment of (C5H4SiMe2tBu)2LnR with 1 equiv of elemental sulfur in toluene at ambient temperature gives dimeric complexes [(C5H4SiMe2tBu)2Ln(μ-SR)]2 [R = Me, Ln = Yb (1), Er (2), Dy (3), Y (4); R = nBu, Ln = Yb (5), Dy (6)]. All these complexes have been characterized by elemental analysis, IR and mass spectroscopies. The structures of complexes 1, 3, 5 and 6 are also determined through X-ray single crystal diffraction analysis, indicating that only one sulfur atom from elemental sulfur inserts into Ln–C σ-bond.  相似文献   

3.
The magnetic properties of α-Cu(dca)2(pyz) were examined by magnetic susceptibility, magnetization, inelastic neutron scattering (INS), muon-spin relaxation (μSR) measurements and by first-principles density functional theoretical (DFT) calculations and quantum Monte Carlo (QMC) simulations. The χ versus T curve shows a broad maximum at 3.5 K, and the data between 2 and 300 K is well described by an S = 1/2 Heisenberg uniform chain model with g = 2.152(1) and J/k= −5.4(1) K. μSR measurements, conducted down to 0.02 K and as a function of longitudinal magnetic field, show no oscillations in the muon asymmetry function A(t). This evidence, together with the lack of spin wave formation as gleaned from INS data, suggests that no long-range magnetic order takes place in α-Cu(dca)2(pyz) down to the lowest measured temperatures. Electronic structure calculations further show that the spin exchange is significant only along the Cu–pyz–Cu chains, such that α-Cu(dca)2(pyz) can be described by a Heisenberg antiferromagnetic chain model. Further support for this comes from the M versus B curve, which is strongly concave owing to the reduced spin dimensionality. α-Cu(dca)2(pyz) is a molecular analogue of KCuF3 owing to dx2-y2dx2-y2 orbital ordering where nearest-neighbor magnetic orbital planes of the Cu2+ sites are orthogonal in the planes perpendicular to the Cu–pyz–Cu chains.  相似文献   

4.
Alkylation of PdCl2(dotpm) (dotpm = bis(di-ortho-tolylphosphino)methane) with n-butyllithium produces the binuclear Pd(0) complex Pd2(μ-dotpm)2 and the elimination byproducts 1-butene, cis-2-butene, trans-2-butene, butane, and octane. The dibutyl complex, Pd(dotpm)(n-Bu)2, is presumed to be the reaction intermediate. The crystal structure of Pd2(μ-dotpm)2 reveals that the methylene groups of the bridging dotpm ligands are located on opposite sides of the Pd2P4 unit, forming an 8-membered ring that is in an elongated chair conformation. The four phosphorus atoms are not coplanar, and the P1-P2-P3-P4 ring has a torsion angle of 13.8°, which minimizes the spatial interactions among the o-tolyl rings. The Pd-Pd bond distance is 2.8560(6) Å, which indicates that there is a weak “closed-shell” bonding interaction between the d10-d10 metal centers. Each palladium atom has a nearly linear geometry, and the eight methyl groups of the dotpm ligands shield the open coordination sites on the metal centers. Four methyl groups shield the metal atoms above and below the Pd2P4 ring cavity, and four methyl groups block the open metal sites outside of the Pd2P4 ring. The Pd2(μ-dotpm)2 complex readily undergoes oxidative addition of dichloromethane to form the rigid A-frame complex Pd2Cl2(μ-CH2)(μ-dotpm)2.  相似文献   

5.
The dipalladium complexes, [PdCl(μ-MeN{P(OR)2}2)]2 (R = CH2CF3, 1a; Ph, 1b) react with [Mo25-C5H5)2(CO)6] in boiling benzene to afford the molybdenum-palladium heterometallic complexes, [(η5-C5H5)(CO)Mo(μ-MeN{P(OR)2}2)2PdCl] (R = CH2CF3, 3a; Ph, 3b), [(η5-C5H5)Mo(μ3-CO)2(μ-MeN{P(OR)2}2)2Pd2Cl], (R = CH2CF3, 5a; Ph, 5b), [(η5-C5H5)(Cl)Mo(μ2-CO)(μ2-Cl)(μ-MeN{P(OR)2}2)PdCl], (R = CH2CF3, 6a; Ph, 6b) and also the mononuclear complex [Mo(CO)Cl(η5-C5H5)(κ2-MeN{P(OR)2}2)], (R = Ph, 4b). These complexes have been separated by column chromatography and are characterised by elemental analysis, IR, 1H, 31P{1H} NMR data. The structures of 1a, 3a, 4b, 5b and 6a have been confirmed by single crystal X-ray diffraction. The CO ligands in 5b and 6a adopt a semi-bridging mode of bonding; the Mo-CO distances (1.95-1.97 Å) are shorter than the Pd-CO distances (2.40-2.48 Å). The Pd-Mo distances fall in the range, 2.63-2.86 Å. The reaction of [Mo25-C5H5)2(CO)6] with MeN{P(OPh)2}2 in toluene gives [Mo2(CO)45-C5H5)21-MeN{P(OPh)2}2)2] (2) in which the diphosphazane acts as a monodentate ligand.  相似文献   

6.
The syntheses, physical characterization and crystal structures of two new molecular copper(II) complexes of composition [Cu(C5H5N)2(C7F5O2)2] (1) and [Cu(C5H5N)2(C7F5O2)2(H2O)] (2) (C5H5N = py = pyridine and C7F5O2 = pfb = pentafluorobenzoate) are reported. Single-crystal X-ray structure determinations revealed that in 1, the Cu2+ ion, which lies on a crystallographic inversion centre, is coordinated to two py molecules and two oxygen atoms from two monodentate pfb anions, resulting in a trans-CuN2O2 square planar geometry. In 2, the Cu2+ ion is also coordinated to two py and two pfb species in addition to a water molecule in the apical site of a distorted CuN2O3 square pyramid. In the crystal packing, both 1 and 2 show segregated aromatic π-π stacking interactions in which (py + py) and (pfb + pfb) ring-pairings are seen, but no (py + pfb) pairings occur. Crystal data: 1: C24H10CuF10N2O4, Mr = 643.88, space group , a = 8.0777 (3) Å, b = 8.0937 (3) Å, c = 10.5045 (5) Å, α = 90.916 (3)°, β = 93.189 (2)°, γ = 118.245 (3)°, V = 603.36 (4) Å3, Z = 1. 2: C24H12CuF10N2O5, Mr = 661.90, space group , a = 7.5913 (5) Å, b = 15.6517 (6) Å, c = 21.1820 (14) Å, α = 95.697 (4)°, β = 94.506 (2)°, γ = 91.492 (4)°, V = 2495.2 (3) Å3, Z = 4.  相似文献   

7.
Reactions between 1,1′-(Me3SiCC)2Rc′ [Rc′ = ruthenocen-1,1′-diyl, Ru(η-C5H4-)2] and RuCl(PP)Cp′ in the presence of KF gave 1,1′-{Cp(PP)RuCC}2Rc′ [Cp′ = Cp, PP = PPh31, P(m-tol)32, dppe 3, dppf 4; Cp′ = Cp, PP = dppe 5]. Compounds 1 and 2 react with tcne to give two diastereomers a/b of the allylic (vinylcarbene) complexes 6 and 7, while methylation of 5 gave the bis-vinylidene [1,1′-{Cp(dppe)RuCCMe}2Rc′](BPh4)2 (8). The X-ray structures of 4, 6b and 8 have been determined. Cyclic voltammograms indicate that there is some electronic communication between the ruthenium end-groups through the Rc′ centre.  相似文献   

8.
Mononuclear compounds M(CO)23-C3H5)(en)(X) (X = Br, M = Mo(1), W(2); X = N3, M = Mo(3), W(4); X = CN, M = Mo(5), W(6)) and cyanide-bridged bimetallic compounds [(en)(η3-C3H5)(CO)2M(μ-CN)M(CO)23-C3H5)(en)]Br (M = Mo (7), W(8)) were prepared and characterized. These compounds are fluxional and display broad unresolved proton NMR signals at room temperature. Compounds 1-6 were characterized by NMR spectroscopy at −60 °C, which revealed isomers in solution. The major isomers of 1-4 adopt an asymmetric endo-conformation, while those of 5 and 6 were both found to possess a symmetric endo-conformation. The single crystal X-ray structures of 1-6 are consistent with the structures of the major isomer in solution at low temperature. In contrast to mononuclear terminal cyanide compounds 5 and 6, cyanide-bridged compounds 7 and 8 were found to adopt the asymmetric endo-conformation in the solid state.  相似文献   

9.
Compounds M(CO)23-C3H5)(L-L)(NCBH3) (L-L = dppe, M = Mo(1), W(2); L-L = bipy, M = Mo(3), W(4); L-L = en, M = Mo(5), W(6)) were prepared and characterized. The single crystal X-ray analyses of 2-6 revealed that the cyanotrihydroborate anion bonds to the metal through a nitrogen atom, the open face of the allyl group being pointed toward the two carbonyls (endo-isomer). In compounds 2, 5, and 6, the two donor atoms of the bidentate ligand occupy equatorial and axial positions, respectively. In the solid state structures of compounds 3 and 4 both nitrogen atoms of the bipy ligand occupy equatorial positions. The NMR spectroscopy reveals a fluxional behavior of compounds 1, 2, 5, and 6 in solution. Although the fluxional behavior of compounds 5 and 6 ceased at about −40 °C, that of compound 1 could not be stopped even at −90 °C. Their low temperature conformations are consistent with their solid state structures. Both the endo- and exo-isomers coexist in solution for compounds 3 and 4.  相似文献   

10.
Syntheses and crystal structures of [tBu3SbCr(CO)5] (1), [tBu3BiM(CO)5] [M = Cr (2), W (3)] and [tBu3BiMnCp′(CO)2] (4) (Cp′ = η5-C5H4CH3) are reported.  相似文献   

11.
Reactions of [CpIr(CO)(TeTol)2] (1; Tol = p-tolyl) with certain organometallic Pd(II), Pt(II), Ir(III), Rh(III), and Ru(II) species afforded IrPd, IrPt, IrPt2, Ir2, IrRh, IrRu3, and IrRu complexes having tellurolato-bridged dinuclear or trinuclear cores. This finding demonstrates that 1 is a versatile precursor to synthesize a variety of multinuclear homo- and heterometallic μ-tellurolato complexes, whose chemistry is still less advanced as compared with that of μ-thiolato complexes.  相似文献   

12.
The tetraethyl- and tetramethyl-cyclobutadiene complexes [(η4-C4R4)Co(η5-C5H4CHO)] R = Et, 5, R = Me, 7, and [(η4-C4R4)Co(η5-C5H4CO2Me)] R = Et, 6, R = Me, 8, are conveniently prepared by photolysis of the corresponding isocobaltocenium cations [(η4-C4R4)Co(η6-C6H5Me)]+ in acetonitrile, and subsequent treatment with Na[C5H4CHO] or Na[C5H4CO2Me]. The aldehydes 5 and 7 undergo Wittig and Knoevenagel reactions with [FcCH2PPh3]I and CH2(CN)2, to form [(η4-C4R4)Co(η5-C5H4CH=CHFc)] and [(η4-C4R4)Co(η5-C5H4CH=C(CN)2], 11 and 15, respectively. The Horner-Wittig reaction of [(η4-C4R4)Co(η5-C5H4CH2P(O)(OEt)2] with [(η4-C4Ph4)Co(η5-C5H4CHO)] yields [(η4-C4R4)Co(η55-C5H4CHCH-C5H4)Co(η4-C4Ph4)], 12 and 13. [(η4-C4Me4)Co(η5-C5H4CHO)] also reacts with t-BuLi and FcLi to furnish the corresponding secondary alcohols, 16 and 17, respectively. Surprisingly, the attempted direct synthesis of 5 by reaction of Na[C5H5] and ethyl formate with [(η4-C4Et4)Co(CO)2I], 1, instead yielded [(η5-C5H5)Co(η4-3,4,5,6-tetraethyl-α-pyrone)], 18, and a mechanistic proposal is advanced. The X-ray crystal structures of 1, 7, 8, 11(Z), 15 and 18, and also the isocobaltocenium salts [(η4-C4Et4)Co(η6-C6H5Me)][PF6], 2, and [(η4-C4Et4)Co(η6-1,3,5-C6H3Me3)][PF6], 4, are reported.  相似文献   

13.
Treatment of [W(CO)5THF] with diferrocenyl diselenide, Fc2Se2, yielded the novel metal-metal bonded tungsten(I) complex, [W2(μ-SeFc)2(CO)8] (1: Fc = ferrocenyl, [Fe(η5-C5H5)(η5-C5H4)]), which was characterised by NMR and IR spectroscopy, mass spectrometry, and X-ray crystallography. The corresponding tellurium derivative could not be prepared by an analogous route. The X-ray crystal structure of Fc2Te2 has also been determined.  相似文献   

14.
The alkyl-bridged iron(II) complexes [{Cp(CO)2Fe}2{μ-(CnH2n)}] (n = 6-10, Cp = η5-C5H5) undergo both single and double hydride abstraction when reacted with one equivalent of Ph3CPF6 to give both the monocationic complexes, [{Cp(CO)2Fe}2{μ-(CnH2n−1)}]PF6, and the dicationic complexes, [{Cp(CO)2Fe}2{μ-(CnH2n−2)}](PF6)2. The ratios of monocationic to dicationic complexes decrease with the increase in the value of n. The complexes where n = 4 and 5 undergo only single hydride abstraction under similar conditions. When reacted with two equivalents of Ph3CPF6, the complexes where n = 6-10 undergo double hydride abstraction to give dicationic complexes only. In contrast, the complex where n = 5 gives equal amounts of the monocationic and the dicationic complexes, while the complex where n = 4 only gives the monocationic complex. 1H and 13C NMR data show that in the monocationic complexes one metal is σ-bonded to the carbenium ion moiety while the other is bonded in a η2-fashion forming a chiral metallacylopropane type structure. In the dicationic complexes both metals are bonded in the η2-fashion. The monocationic complexes where n = 4-6, react with methanol to give η1-alkenyl complexes[Cp(CO)2Fe(CH2)nCHCH2] (n = 2-4) as the major products and σ-bonded ether products [{Cp(CO)2Fe}2{μ-(CH2)nCH(OCH3)CH2}] as the minor products. The complex where n = 8 reacted with iso-propanol to give the η1-alkenyl complex [Cp(CO)2Fe(CH2)6CHCH2]. The dicationic complexes where n = 5, 8 and 9 were reacted with NaI to give the respective α, ω-dienes and [Cp(CO)2FeI].  相似文献   

15.
The bimetallic carbocation complex [{Cp(CO)2Fe}2(μ-C4H7)]PF6 reacted with trifluoroacetic acid to give the mononuclear cationic complex [Cp(CO)2Fe{η2-(CH2CHCH2CH3)}]PF6, which formed yellow orthorhombic crystals in the space group P212121 with a = 7.652(4), b = 13.422(7), c = 14.037(7); α = β = γ = 90.00 and Z = 4. The carbocation is coordinated to the metal in a η2-fashion forming a chiral metallacyclopropane type structure. The β-CH carbon (C9) is disordered over two positions (C9A and C9B), each having about 50% occupancy. This is attributed to there being both the R and S enantioface isomers in equal amounts in the crystal sample. NMR data indicate that the metallacyclopropane structure observed in the solid state is preserved in solution.  相似文献   

16.
A series of germylene and stannylene (Me2NCH2CH2O)2E (E = Ge, 1; E = Sn, 2) complexes of group 6 metals and iron carbonyls L·M(CO)n (M = Cr, Mo, W, n = 5 (3-8), n = 4 (9, 10); M = Fe, n = 4 (11, 12)) were prepared. These complexes were characterized by 1H, 13C NMR, FTIR and elemental analysis. Ligand properties of 1 and 2 were compared to PPh3 and dmiy (N,N′-dimethylimidazolin-2-ylidene) using theoretical calculations (PBE/TZ2P) and FTIR. Ligand dissociation energies increase in the order Ph3P < 21 < dmiy, while donor strength rise in the order PPh< dmiy < 2 < 1.  相似文献   

17.
Reaction of [Mn2(CO)9(NCMe)] with tetrahydropyrimidine-2-thione (thpymSH) at 25 °C furnishes the mono- and dinuclear complexes [Mn(CO)411-SCNHC3H6NCO)] (2) and [Mn2(CO)6(μ-thpymS)2] (1), respectively. Carbon-nitrogen coupling is observed in compound 2 resulting in the formation of κ11-SCNHC3H6NCO ligand while compound 1 adopts a centrosymmetric structure. Reaction of 1 with [Os3(CO)10(NCMe)2] at 80 °C affords the mixed Mn-Os cluster [MnOs3(CO)133-thpymS)] (3) which possesses a butterfly skeleton of four metal atoms whereas with Ru3(CO)12 at 110 °C gives the mixed Mn-Ru complex [MnRu3(CO)144-S)(κ11-thpym)] (4). In contrast, treatment of 1 with Fe3(CO)12 at 80 °C furnishes two triiron complexes [Fe3(CO)93-S)(μ311-C4H6N2)] (5) and [Fe3(CO)83-S)21-C4H8N2)] (6). The former also results from the direct reaction of thpymSH with Fe3(CO)12 and reacts with H2S to afford 6. The molecular structures of all these new complexes have been determined by X-ray diffraction studies.  相似文献   

18.
Complexes containing C4 ligands attached to one or two AuRu3 clusters by conventional σ, 2π interactions have been obtained from reactions between (R3P)AuC≡CC≡CAu(PR3) (R = Ph, tol) or Au(C≡CC≡CH){P(tol)3} and either Ru3(CO)12, Ru3(CO)10(NCMe)2 or Ru3(μ-dppm)(CO)10. The X-ray determined structures of {(R3P)AuRu3(CO)9}23232-C2C2) [R = Ph (1) (three solvates), tol (2)], AuRu332-C2C≡CAu(PPh3)}(CO)9(PPh3) (3) and {(Ph3P)AuRu3(μ-dppm)(CO)7} (μ3232-C2C2){Ru3(μ-H)(μ-dppm)(CO)7} (4) are reported.  相似文献   

19.
Cationic metal complexes of dipicolinic acid (dipicH2) are stabilized by [Ce(dipic)3]2− ions in the three isomorphous crystals [M(dipicH2)(OH2)3][Ce(dipic)3] · 3H2O (M = Ni, 1; Cu, 2; Zn, 3). Magnetic dilution provided by the bulky anions leads to well-resolved EPR spectra in polycrystalline samples of 2. The cations have 4+2 coordination, the carbonyl atom of the carboxylic acid groups coordinating weakly from trans positions. In the case of 2 this steric distortion is augmented by Jahn–Teller distortion. All the three structures are satisfactorily modelled by calculations based on density functional theory (DFT). The switch of the Jahn–Teller axis upon deprotonation of the complex, leading to the neutral species Cu(dipic)(H2O)3, is also reproduced by DFT. Electronic transition energies as well as the g-tensor component of the d9 complex obtained are in good agreement with experiment. However, the calculated hyperfine coupling constants are in error. DFT also fails to satisfactorily account for the electronic transition in the d8 ion in 1.  相似文献   

20.
The effect that a solvent has on reactions of Cp2Zr{(μ-H)2BHR}2 and Cp2ZrH{(μ-H)2BHR} (R = CH3, Ph) with B(C6F5)3 has been studied. From the reaction in benzene the metathesis product Cp2Zr{(μ-H)2B(C6F5)2}2, 2, was isolated. In the case of diethyl ether, different hydride abstraction products, including [Cp2Zr(OEt2){(μ-H)2BHPh}][HB(C6F5)3], 3, [Cp2Zr(OEt2){(μ-H)2BHCH3}][HB(C6F5)3], 4, [Cp2Zr(OEt2){(μ-H)2BH2}][HB(C6F5)3], 5, and [Cp2Zr(OEt)(OEt2)][HB(C6F5)3], 6, were isolated depending on the starting zirconocene complex. The diethyl ether molecules of 3-6 are weakly coordinated to Zr and displaced in THF solution. Isolation of 3 and 4 is attributed to their fast precipitation from the reaction mixture, which prevented further reactions from occurring. In addition to the hydride abstraction, a hydride metathesis was also involved in the formation of 5. Time-elapsed 11B NMR studies indicate that 3 and 4 are the intermediates on the pathway to 5 and 6. The molecular structures of 2-6 were determined by single-crystal X-ray diffraction.  相似文献   

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