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1.
Complex Cp∗PtCl2 (Cp∗ = η-C4Me4) reacts with the carborane anions [7,8-C2B9H11]2− and [9-SMe2-7,8-C2B9H10] giving platinacarboranes Cp∗Pt(η-7,8-C2B9H11) (1) and [Cp∗Pt(η-9-SMe2-7,8-C2B9H10)]+ (2), respectively. Reactions of the [Cp∗Pt]2+ fragment (as a labile nitromethane solvate) with the sandwich compounds Cp∗Fe(η-C5H3Me2BMe) and Cp∗Rh(η5-C4H4BPh) afford the triple-decker cations [Cp∗Pt(μ-η:η-C5H3Me2BMe)FeCp∗]2+ (3) and [Cp∗Pt(μ-η55-C4H4BPh)RhCp∗]2+ (4) with bridging boratabenzene and borole ligands. The structures of 1 and 3(CF3SO3)2 were determined by X-ray diffraction.  相似文献   

2.
Cp-functionalized monotroticenes [(η7-C7H7)Ti(η5-C5H4E)] (2, E = Ph2SiCl; 3, E = tBu2SnCl; 12, E = I) and bitroticenes [(η7-C7H7)Ti(η5-C5H4)]2E′ (5, E′ = PPh; 6, E′ = BN(SiMe3)2; 7, E′ = Cp2Ti) were prepared by salt elimination metathesis between the monolithiated troticene [(η7-C7H7)Ti(η5-C5H4Li)]·pmdta (1b) (pmdta = N,N′,N′,N″,N″-pentamethyldiethylene-triamine) and the appropriate electrophile. The troticenyl-substituted zirconocene monochloride [(η7-C7H7)Ti(η5-C5H4ZrClCp*2)] (Cp* = η5-C5Me5) (8) and hafnocene ethoxide [(η7-C7H7)Ti{η5-C5H4Hf(OEt)Cp2}] (Cp = η5-C5H5) (11), and the heterobimetallic μ-oxo complexes [(η7-C7H7)Ti(η5-C5H4MCp2)]2O (9, M = Zr; 10, M = Hf) were obtained instead of the expected zircona- and hafna[1]troticenophanes by reaction of the dilithiated troticene [(η7-C7H6Li)Ti(η5-C5H4Li)]·pmdta (1a) with [Cp2MCl2] (M = Zr, Hf) or [Cp*2ZrCl2] in stoichiometric amounts. These compounds were characterized by single crystal X-ray diffraction analyses and, in the case of 2, 3, 57, 9, 10 and 12, also by elemental analyses and 1H, 13C and 119Sn NMR spectroscopy. Exposure of the troticenyl organotin chloride 3 to moisture resulted in its partial hydrolysis and formation of the organostannoxane-bridged bitroticene 4, while palladium-catalyzed Negishi C–C cross-coupling reaction between the troticenylzinc chloride [(η7-C7H7)Ti(η5-C5H4ZnCl)] (13) and the iodotroticene 12 or iodobenzene (PhI) led to the fulvalene complexes [(η7-C7H7)Ti(η5-C5H4)]2 (14) and [(η7-C7H7)Ti(η5-C5H4Ph)] (15). Compound 4 displays an unsymmetrical structure with the troticenyl fragments cis with respect to the Sn–O–Sn core, whereas compound 14 is centrosymmetrically trans oriented.  相似文献   

3.
Cp-functionalized monotroticenes [(η7-C7H7)Ti(η5-C5H4E)] (2, E = Ph2SiCl; 3, E = tBu2SnCl; 12, E = I) and bitroticenes [(η7-C7H7)Ti(η5-C5H4)]2E′ (5, E′ = PPh; 6, E′ = BN(SiMe3)2; 7, E′ = Cp2Ti) were prepared by salt elimination metathesis between the monolithiated troticene [(η7-C7H7)Ti(η5-C5H4Li)]·pmdta (1b) (pmdta = N,N′,N′,N″,N″-pentamethyldiethylene-triamine) and the appropriate electrophile. The troticenyl-substituted zirconocene monochloride [(η7-C7H7)Ti(η5-C5H4ZrClCp*2)] (Cp* = η5-C5Me5) (8) and hafnocene ethoxide [(η7-C7H7)Ti{η5-C5H4Hf(OEt)Cp2}] (Cp = η5-C5H5) (11), and the heterobimetallic μ-oxo complexes [(η7-C7H7)Ti(η5-C5H4MCp2)]2O (9, M = Zr; 10, M = Hf) were obtained instead of the expected zircona- and hafna[1]troticenophanes by reaction of the dilithiated troticene [(η7-C7H6Li)Ti(η5-C5H4Li)]·pmdta (1a) with [Cp2MCl2] (M = Zr, Hf) or [Cp*2ZrCl2] in stoichiometric amounts. These compounds were characterized by single crystal X-ray diffraction analyses and, in the case of 2, 3, 57, 9, 10 and 12, also by elemental analyses and 1H, 13C and 119Sn NMR spectroscopy. Exposure of the troticenyl organotin chloride 3 to moisture resulted in its partial hydrolysis and formation of the organostannoxane-bridged bitroticene 4, while palladium-catalyzed Negishi C–C cross-coupling reaction between the troticenylzinc chloride [(η7-C7H7)Ti(η5-C5H4ZnCl)] (13) and the iodotroticene 12 or iodobenzene (PhI) led to the fulvalene complexes [(η7-C7H7)Ti(η5-C5H4)]2 (14) and [(η7-C7H7)Ti(η5-C5H4Ph)] (15). Compound 4 displays an unsymmetrical structure with the troticenyl fragments cis with respect to the Sn–O–Sn core, whereas compound 14 is centrosymmetrically trans oriented.  相似文献   

4.
5.
The reactions of ferrocenylketimines [(η5-C5H4CCH3NAr)Fe(η5-C5H5)] (Ar=a variety of substituted phenyls) with methyl-iodide in refluxed dichloromethane followed by reduction with sodium borohydride in absolute ethanol led to [(η5-C5H4CH(CH3)N(CH3)Ar)Fe(η5-C5H5)]. Compound [(η5-C5H4CH(CH3)N(CH3)C6H4Cl-p)Fe(η5-C5H5)] (3d) has been characterized structurally. Compound 3d is monoclinic, space group P21/n, with a=8.908(2) Å, b=13.63(1) Å, c=14.510(3) Å and β=107.03°.  相似文献   

6.
The two cyclooctatetraene metal carbonyls that have been synthesized are the tetrahapto derivative (η4-C8H8)Fe(CO)3 and the hexahapto derivative (η6-C8H8)Cr(CO)3 using the reactions of cyclooctatetraene with Fe(CO)5 and with fac-(CH3CN)3Cr(CO)3, respectively. Related C8H8M(CO)n (M = Ti, V, Cr, Mn, Fe, Co, Ni; n = 4, 3, 2, 1) species have now been investigated by density functional theory in order to explore the scope of cyclooctatetraene metal carbonyl chemistry. In this connection, the existence of octahapto (η8-C8H8)M(CO)n species is predicted as long as the central metal M does not exceed the 18-electron configuration by receiving eight electrons from the η8-C8H8 ring. Thus the lowest energy structures (η8-C8H8)Ti(CO)n (n = 3, 2, 1), (η8-C8H8)M(CO)n (M = V, Cr; n = 2, 1), and (η8-C8H8)Mn(CO) all have octahapto η8-C8H8 rings. An exception is (η6-C8H8)Fe(CO), with a hexahapto η6-C8H8 ring and thus only a 16-electron configuration for the iron atom. Hexahapto (η6-C8H8)M(CO)n structures are predicted for the known (η6-C8H8)Cr(CO)3 as well as the unknown (η6-C8H8)Ti(CO)4, (η6-C8H8)V(CO)3, (η6-C8H8)Mn(CO)2, and (η6-C8H8)Fe(CO)2 with 18, 18, 17, 17, and 18 electron configurations, respectively, for the central metal atoms. There are two types of tetrahapto C8H8M(CO)n complexes. In the 1,2,3,4-tetrahapto (η4-C8H8)M(CO)n complexes two adjacent CC double bonds, forming a 1,3-diene unit similar to butadiene, are bonded to the metal atom. In the 1,2,5,6-tetrahapto (η2,2-C8H8)M(CO)3 derivatives two non-adjacent CC double bonds of the C8H8 ring are bonded to the metal atom. The known (η4-C8H8)Fe(CO)3 is a 1,2,3,4-tetrahapto complex. The unknown isomeric 1,2,5,6-tetrahapto complex (η2,2-C8H8)Fe(CO)3 is predicted to lie ∼15 kcal/mol above (η4-C8H8)Fe(CO)3. The related 1,2,5,6-tetrahapto complexes (η2,2-C8H8)Cr(CO)4, (η2,2-C8H8)Mn(CO)4, [(η2,2-C8H8)Mn(CO)3], (η2,2-C8H8)Co(CO)2, and (η2,2-C8H8)Ni(CO)2 are all predicted to be low-energy structures.  相似文献   

7.
The reactions of [(η7-C7H7)Hf(η5-C5H5)] (1b) with the two-electron donor ligands tert-butyl isocyanide (tBuNC), 2,6-dimethylphenyl isocyanide (XyNC), 1,3,4,5-tetramethylimidazolin-2-ylidene (IMe) and trimethylphosphine (PMe3) are reported. The 1:1 complexes [(η7-C7H7)Hf(η5-C5H5)L] (2b, L = tBuNC; 3b, L = XyNC; 4b, L = IMe, 5b, L = PMe3) have been isolated in crystalline form, and their molecular structures have been determined by X-ray diffraction analyses. The stabilities of these hafnium complexes were probed via spectroscopic and theoretical methods, and the results were compared to those previously reported for the corresponding zirconium complexes derived from [(η7-C7H7)Zr(η5-C5H5)] (1a). The X-ray crystal structure of the PMe3 adduct [(η7-C7H7)Zr(η5-C5H5)(PMe3)] (5a) was also established.  相似文献   

8.
The meso-pyridyl substituted dipyrromethane ligands 5-(4-pyridyl)dipyrromethane (4-dpmane) and 5-(3-pyridyl)dipyrromethane (3-dpmane) have been employed in the synthesis of a series of complexes with the general formulations [(η6-arene)RuCl2(L)] (η6-arene = C6H6, C10H14) and [(η5-C5Me5)MCl2(L)] (M = Rh, Ir). The reaction products have been characterized by microanalyses and spectral studies and molecular structures of the complexes [(η6-C10H14)RuCl2(4-dpmane)] and [(η5-C5Me5)IrCl2(3-dpmane)] have been determined crystallographically. For comparative studies, geometrical optimization have been performed on the complex [(η5-C5Me5)IrCl2(4-dpmane)] using exchange correlation functional B3LYP. Optimized bond length and angles are in good agreement with the structural data of the complex [(η5-C5Me5)IrCl2(3-dpmane)]. The complexes [(η6-C10H14)RuCl2(3-dpmane)], [(η5-C5Me5)RhCl2(3-dpmane)] and [(η5-C5Me5)IrCl2(3-dpmane)] have been employed as a transfer hydrogenation catalyst in the reduction of aldehydes. It was observed that the rhodium and iridium complexes mentioned above are more effective in this regard in comparison to the ruthenium complex.  相似文献   

9.
Density Functional Theory calculations have been performed for the halophenylgallyl complexes of iron, ruthenium and osmium [(η5-C5H5)(CO)2M(Ga(X)Ph)] (M = Fe, Ru, Os; X = Cl, Br, I) at the DFT/BP86/TZ2P/ZORA level of theory. The calculated geometry of iron complexes [(η5-C5H5)(CO)2Fe(Ga(Cl)Ph)] and [(η5-C5H5)(CO)2Fe(Ga(I)Ph)] is in excellent agreement with structurally characterized complexes [(η5-C5H5)(CO)2Fe(Ga(Mes)Cl)], [(η5-C5Me5)(CO)2Fe(Ga(Mes)Cl)] and [(η5-C5Me5)(CO)2Fe(Ga(Mes)I)] (Mes = C6H2Me3-2,4,6; Mes = C6H2tBu3-2,4,6). The M-Ga bond distances as well as Mayer bond order of the M-Ga bonds suggest that the M-Ga bonds in these complexes are nearly M-Ga single bond. The π-bonding component of the total orbital contribution is significantly smaller than that of σ-bonding. Thus, in these complexes the Ga(X)Ph ligand behaves predominantly as a σ-donor. The contributions of the electrostatic interaction terms ΔEelstat are significantly smaller in all gallyl complexes than the covalent bonding ΔEorb term. The absolute values of the ΔEPauli, ΔEint and ΔEelstat contributions to the M-Ga bonds increase in both sets of complexes via the order Fe < Ru < Os. In the complexes [(η5-C5H5)(Me3P)2Fe(Ga(X)Ph)] (X = Cl, Br, I), interaction energy as well as bond dissociation energy decrease upon going from X = Cl to X = I.  相似文献   

10.
[(η5-C5R5)Fe(PMe3)2H] (R = H, Me) can be made in good yields in a simple one-pot reaction between FeCl2, PMe3, C5R5H (R = H, Me) and Na/Hg in thf. Reaction of [(η5-C5H5)Fe(PMe3)2H] with pentaborane(9) gives the known metallaborane [(η5-C5H5)-nido-2-FeB5H10] (1) in improved yield as well as the new metallaboranes [(η-C5H5)-nido-2-FeB5H8{μ-5,6-Fe(η5-C5H5)(PMe3)(μ-6,7-H)}] (2), [(η-C5H5)(PMe3)-arachno-2-FeB3H8] (3), [(η5-C5H5)2-capped-nido-2,3-Fe2B4H8] (4), [(η5-C5H5)-nido-2-FeB4H7(PMe3)] (5) and [(η5-C5H5)-nido-2-FeB5H8(PMe3)] (6). Reaction of [(η5-C5Me5)Fe(PMe3)2H] with pentaborane(9) gives predominantly [(η5-C5Me5)-nido-2-FeB5H10] (7) and [(η5-C5Me5)(PMe3)-arachno-2-FeB3H8] (8). Reaction of [(η5-C5H5)Fe(PMe3)2H] with 2 equiv. of BH3 · thf gives low yields of ferrocene and compound 3. Compound 7 thermally isomerises to the apical isomer [(η5-C5H5)-nido-2-FeB5H10] (9) in low yield. Compounds 1 and 7 deprotonate cleanly in the presence of KH at the unique B-H-B bridge to give [(η5-C5H5)-nido-2-FeB5H9][K+] (10) and [(η5-C5Me5)-nido-2-FeB5H9][K+] (11) respectively, whilst 6 deprotonates more slowly at one of two equivalent B-H-B bridges to give the fluxional anion [(η5-C5H5)-nido-2-FeB5H7(PMe3)] (12).  相似文献   

11.
The intense purple colored bi- and trimetallic complexes {Ti}(CH2SiMe3)[CC(η6-C6H5)Cr(CO)3] (3) ({Ti}=(η5-C5H5)2Ti) and [Ti][CC(η6-C6H5)Cr(CO)3]2 (5) {[Ti]=(η5-C5H4SiMe3)2Ti}, in which next to a Ti(IV) center a Cr(0) atom is present, are accessible by the reaction of Li[CC(η6-C6H5)Cr(CO)3] (2) with {Ti}(CH2SiMe3)Cl (1) or [Ti]Cl2 (4) in a 1:1 or 2:1 molar ratio. The chemical and electrochemical properties of 3, 5, {Ti}(CH2SiMe3)(CCFc) [Fc=(η5-C5H5)Fe(η5-C5H4)] and [Ti][(CC)nMc][(CC)mM′c] [n, m=1, 2; n=m; nm; Mc=(η5-C5H5)Fe(η5-C5H4); M′c=(η5-C5H5)Ru(η5-C5H4); Mc=M′c; Mc≠M′c] will be comparatively discussed.  相似文献   

12.
Using 4-ethynylphenylferrocene (1) as the building block, a new series of rigid-rod alkynylferrocenyl precursors consisting of fluoren-9-one unit, 2-bromo-7-(4-ferrocenylphenylethynyl)fluoren-9-one (2a), 2,7-bis(4-ferrocenylphenylethynyl)fluoren-9-one (2b), 2-trimethylsilylethynyl-7-(4-ferrocenylphenylethynyl)fluoren-9-one (3) and 2-ethynyl-7-(4-ferrocenylphenylethynyl)fluoren-9-one (4) have been prepared in moderate to good yields. The acetylene complex 4 is a useful precursor for the synthesis of well-defined carbon-rich ferrocenyl heterometallic complexes, trans-[(η5-C5H5)Fe(η5-C5H4)C6H4CCRCCPt(PEt3)2Ph] (5), trans-[(η5-C5H5)Fe(η5-C5H4)C6H4CCRCCPt(PBu3)2CCRC≡CC6H45-C5H4)Fe(η5-C5H5)] (6), trans-[(η5-C5H5)Fe(η5-C5H4)C6H4CCRCCM(dppm)2Cl] (M=Ru (7), Os (8)) (R=fluoren-9-one-2,7-diyl). All new complexes have been characterized by FTIR, NMR and UV-Vis spectroscopies and fast atom bombardment mass spectrometry (FABMS). The molecular structures of 1, 2a, 4, 6 and 8 have been determined by single-crystal X-ray studies where an ironiron through-space distance of nanosized dimension (ca. 42 Å) is observed in the trimetallic molecular rod 6. The electronic absorption, luminescence and electrochemical properties of these carbon-rich molecules were investigated and the data were correlated with the theoretical results obtained by the method of density functional theory.  相似文献   

13.
The reductive etherification of aldehydes can be performed by the reaction with dialkylmethylsilanes in the presence of new iron(II) piano-stool catalysts of general formula CpFe(CO)2Ar (Cp = η5-C5Me5; Ar = Ph, 4-C6H4OCH3, 4-C6H4CH3, Fc). This transformation is promoted by UV light and affords a simple route for the preparation of unsymmetrical alkyl ethers.  相似文献   

14.
《Comptes Rendus Chimie》2002,5(4):319-324
The ligand substitution by diphosphine L–L on (η5-C5H5)Fe(CO)2I usually results in the chelated 〚(η5-C5H5)Fe(CO)(η2-L–L)+〛〚I〛 product exclusively. One could suppress the chelated complexes and selectively prepare the bridged 〚{(η5-C5H5)Fe(CO)2}2(μ-L–L)2+〛 complexes by application of the electron-transfer chain catalysis with a chemical initiation. Introducing a catalytic amount of reductant at low temperature to the mixture of 2:1 (η5-C5H5)Fe(CO)2I/L–L in THF selectively produces the bridged complexes in 78–93% isolated yields where L–L is Ph2P(CH2)nPPh2, n = 1–4, or (η5-C5H4PPh2)2Fe.  相似文献   

15.
A number of organometallic stilbenes of the general type [Co(η4-C4Ph4)(η5-C5H4CHCHR] are reported where R is C6H4X-4 (X = H, OMe, Br, NO2), 1-naphthyl, 9-anthryl, 1-pyrenyl, (η5-C5H4)Co(η4-C4Ph4), and (η5-C5H4)Fe(η5-C5H4Y) {Y = CHO, CHC(CN)2 and CHCHC5H45)Co(η4-C4Ph4)}. They were prepared by Wittig or Horner-Wadsworth-Emmons reactions which yield both E and Z or only E products respectively. The isomers were separated and all compounds characterised by standard spectroscopic techniques as well as by X-ray diffraction methods in many cases. The electrochemistry of the stilbene analogues in dichloromethane solution is also reported. In most, the (η5-C5H4)Co(η4-C4Ph4) functional group undergoes a reversible one-electron oxidation. For those molecules that also include (η5-C5H4)Fe(η5-C5H4Y), this is preceded by the reversible oxidation of the ferrocenyl group. Spectroscopic and structural data suggests that for most compounds there is little electronic interaction between Co(η4-C4Ph4)(η5-C5H4) and the R end groups which are effectively independent of one another. The only exceptions to this are Z and E-[Co(η4-C4Ph4)(η5-C5H4CHCHC6H4NO2-4], and [Co(η4-C4Ph4)(η5-C5H4CHCHC5H45)Fe{η5-C5H4CHC(CN)2}] where the electronic spectra are respectively consistent with a significant Co(η4-C4Ph4)(η5-C5H4)/NO2 donor/acceptor interaction and a less significant Co(η4-C4Ph4)(η5-C5H4)/C(CN)2 one. However, OTTLE studies show that in the electronic spectra of [Co(η4-C4Ph4)(η5-C5H4CHCHR]+ there are low energy absorption bands (950-1800 nm) which are attributed to R → Co(η4-C4Ph4)(η5-C5H4)+ or, when R is a ferrocenyl-base group, Co(η4-C4Ph4)(η5-C5H4) → (η5-C5H4)Fe(η5-C5H4Y)+ charge transfer transitions. The ferrocenyl compounds undergo cis/trans isomerisation on the OTTLE experiment timescale.  相似文献   

16.
The coupling of [Ru(CO)2L(η4-cot)] (L = CO or PPh3, cot = cyclooctatetraene) with [Fe(CO)35-cyclohexadienyl)]+ or [Fe{P(OMe)3}(NO)23-allyl)]+ yields respectively the dimetallic species [Ru(CO)2L(η23-C8H8{Fe(CO)34-C6H7)}] (3) and the allyl-substituted derivative [Ru(CO)2L(η5-C8H8CH2C(Me)CH2)][PF6] (5) whose X-ray structure is reported; paramagnetic [Co(η-C5H5)2] and [Ru(CO)35-cyclohexadienyl)]+ give diamagnetic [Ru(CO)34-C6H7C5H6(o-C5H5)] (8) via CC bond formation and one-electron reduction.  相似文献   

17.
The synthesis and characterization of pyrazole derivatives of general formula [C6H4-4-R-1-{(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)}] [R = OMe (1a) or H (1b)] with a ferrocenylmethyl substituent are described.The study of the reactivity of compounds 1 with palladium(II) acetate has allowed the isolation of complexes (μ-AcO)2[Pd{κ2-C,N-C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}]2 (2) [R = OMe (2a) or H (2b)] that contain a bidentate [C(sp2, phenyl), N] ligand and a central “Pd(μ-AcO)2Pd” unit.Furthermore, treatment of 2 with LiCl produced complexes (μ-Cl)2[Pd{κ2-C,N-C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}]2 (3) [R = OMe (3a) or H (3b)] that arise from the replacement of the acetato ligands by the Cl.Compounds 2 and 3 also react with PPh3 giving the monomeric complexes [Pd{κ2-C,N-C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}X(PPh3)] {X = AcO and R = OMe (5a) or H (5b) or X = Cl and R = OMe (6a) or H (6b)}, where the phosphine is in a cis-arrangement to the metallated carbon atom. Treatment of 3 with thallium(I) acetylacetonate produced [Pd{κ2-C,N-C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}(acac)] (7) [R = OMe (7a) or H (7b)]. Electrochemical studies of the free ligands and the cyclopalladated complexes are also reported. The dimeric complexes 3 also react with MeO2C-CC-CO2Me (in a 1:4 molar ratio) giving [Pd{(MeO2C-CC-CO2Me)2C6H3-4-R-1-[(3,5-Me2-C3N2)-CH2-(η5-C5H4)Fe(η5-C5H5)]}Cl] (8) [R = OMe (8a) or H (8b)], which arise from the bis(insertion) of the alkyne into the σ{Pd-C(sp2, phenyl)} bond of 3.  相似文献   

18.
Ferrocene-bridged NCN pincer complexes of structural type Fe(η5-C5H4-4-NCN-1-MX)2 (X = I: 6, M = Pd; 7, M = Pt; X = Cl: 8, M = Pt; NCN = [4-C6H2(CH2NMe2)2-2,6]) are accessible by the subsequent reaction of Fe(η5-C5H4-4-NCNH)2 (4) with nBuLi and [PtCl2(SEt2)2] (synthesis of 8) or treatment of Fe(η5-C5H4-4-NCN-1-I)2 (5) with [Pd2(dba)3] (synthesis of 6) or [Pt(tol)2(SEt2)]2 (synthesis of 7) (dba = dibenzylidene acetone, tol = 4-tolyl). In addition, the Sonogashira cross-coupling of Fe(η5-C5H4I)2 (1) with HCC-4-NCNH (2) gives Fe(η5-C5H4-CC-4-NCNH)2 (3). The reaction behavior of 3 towards tBuLi is reported as well.Cyclovoltammetric studies show that the ferrocene entity can be oxidized reversibly. The Fe(II)/Fe(III) potential decreases with increasing electron density at the NCN pincer units due to the presence of the M-halide moiety (M = Pd, Pt).The solid state structure of Fe(η5-C5H4-4-NCN-1-PdI)2 (6) is presented. In 6 the Fe(η5-C5H4)2 unit connects two NCN-PdI pincer entities with palladium in a square-planar environment. The cyclopentadienyl ligands show a staggered conformation. The C6H2 rings are tilted by 23.5(3)° towards the C5H4 entities and the C6H2 plane is almost coplanar with the coordination plane (10.3(3)°).  相似文献   

19.
Reactions of 0.5 eq. of the dinuclear complexes [(η6-arene)Ru(μ-Cl)Cl]2 (arene = η6-C6H6, η6-p-iPrC6H4Me) and [(Cp∗)M(μ-Cl)Cl]2 (M = Rh, Ir; Cp∗ = η5-C5Me5) with 4,6-disubstituted pyrazolyl-pyrimidine ligands (L) viz. 4,6-bis(pyrazolyl)pyrimidine (L1), 4,6-bis(3-methyl-pyrazolyl)pyrimidine (L2), 4,6-bis(3,5-dimethyl-pyrazolyl)pyrimidine (L3) lead to the formation of the cationic mononuclear complexes [(η6-C6H6)Ru(L)Cl]+ (L = L1, 1; L2, 2; L3, 3), [(η6-p-iPrC6H4Me)Ru(L)Cl]+ (L = L1, 4; L2, 5; L3, 6), [(Cp∗)Rh(L)Cl]+ (L = L1, 7; L2, 8; L3, 9) and [(Cp∗)Ir(L)Cl]+ (L = L1, 10; L2, 11; L3, 12), while reactions with 1.0 eq. of the dinuclear complexes [(η6-arene)Ru(μ-Cl)Cl]2 and [(Cp∗)M(μ-Cl)Cl]2 give rise to the dicationic dinuclear complexes [{(η6-C6H6)RuCl}2(L)]2+ (L = L1, 13; L2, 14; L3, 15), [{(η6-p-iPrC6H4Me)RuCl}2(L)]2+ (L = L1, 16; L2, 17; L3, 18), [{(Cp∗)RhCl}2(L)]2+ (L = L1, 19; L2, 20; L3, 21) and [{(Cp∗)IrCl}2(L)]2+ (L = L1 22; L2, 23; L3 24). The molecular structures of [3]PF6, [6]PF6, [7]PF6 and [18](PF6)2 have been established by single crystal X-ray structure analysis.  相似文献   

20.
《Tetrahedron: Asymmetry》1998,9(23):4219-4238
A wide variety of planar chiral cyclopalladated compounds of general formulae [Pd{[(η5-C5H3)–CHN–CH(Me)–C10H7]Fe(η5-C5H5)}Cl(L)] (with L=py-d5 or PPh3), [Pd{[(η5-C5H3)–CHN–CH(Me)–C10H7]Fe(η5-C5H5)}(acac)] or [Pd{[(R1–CC–R2)25-C5H3)–CHN–CH(Me)–C10H7]Fe(η5-C5H5)}Cl] (with R1=R2=Et; R1=Me, R2=Ph; R1=H, R2=Ph; R1=R2=Ph; R1=R2=CO2Me or R1=CO2Et, R2=Ph) are reported. The diastereomers {(Rp,R) and (Sp,R)} of these compounds have been isolated by either column chromatography or fractional crystallization. The free ligand (R)-(+)-[{(η5-C5H4)–CHN–CH(Me)–C10H7}Fe(η5–C5H5)] (1) and compound (+)-(Rp,R)-[Pd{[(Et–CC–Et)25-C5H3)–CHN–CH(Me)–C10H7]Fe(η5-C5H5)}Cl] (7a) have also been characterized by X-ray diffraction. Electrochemical studies based on cyclic voltammetries of all the compounds are also reported.  相似文献   

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