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1.
It has been shown that bis(cyclopentadienyl)(μ-cyclopentadiene)dinickel, (NiCP)2(η-C5H6), and (η5-cyclopentadienyl) (η3-cyclopentenyl)nickel, CpNi(η3-C5H7), are formed in the reaction of nickelocene with methyl-lithium and with 1-phenyl-2-methyl-propenyl-lithium. The compound (NiCp)2(μ-C5H6) can be only formed as a result of the reduction of the cyclopentadienyl ring bonded to the nickel atom whereas the formation of CpNi(η3-C5H7) can be explained by the further hydrogeneration of cyclopentadiene formed in the earlier reaction steps. (NiCp)2(μ-C5H6) has been fully characterised spectrometrically and its X-ray structure determined. It crystallises in the orthorhombic system, space group Pnma, with four molecules per unit cell.  相似文献   

2.
Chemical vapor deposition experiments were conducted using phosphinoborane compounds of the type [R2BPR′2]n, where R = CH2CH3 (1) or CH3 (2), R′= C(CH3)3, and R = CH2CH3 (3) or CH3 (4), R′ = Si(CH3)3. Thin films were deposited on Si substrates at 300–850°C under vacuum using 1–3, while no film formed using 4. All films contained considerable carbon (C/B = 0.67–7) and were deficient in phosphorus (P/B = 0-0.5) according to Auger electron spectroscopy. For 3, silicon was incorporated in the films (Si/B = 0.9–2). The preferential loss of phosphorus was nearly complete at higher pyrolysis temperatures that favor formation of carbon-rich films. Volatile products of the decompositions were observed by in situ mass spectroscopy and by 1H nuclear magnetic resonance analysis of the condensate in a liquid nitrogen cooled trap. The products indicate that β-hydrogen elimination of alkene from boron is a preferred reaction pathway, while concerted elimination reactions appear to be inefficient. Although these phosphinoborane compounds do not appear to be suitable precursors for pure boron phosphide, the B-P-C films obtained are chemically inert and may be of interest as protective coatings.  相似文献   

3.
Hydrogensulfido and hydrogenselenido complexes of general composition (η5-C5R5(CO)3M(EH) (R = H, CH3; M = Cr, Mo, W; E = S, Se) react at the EH functions by deprotonation, bimolecular elimination of H2E, or by loss of the chalcogen atoms E. Reactions with Lewis-acidic complex cations such as [((η5-C5R5)(CO)3M]+ (R = H, CH3; M = Mo, W) are useful for the synthesis of chalcogen bridged compounds (μ-E)[(η5-C5R5)(CO)3M]2. The heterodinuclear chalcogen bridge complexes thus generated form metathesis equilibria with their corresponding homodinuclear systems.  相似文献   

4.
Hydrogenchalcogenido complexes of general composition (η5-C5R5)(CO)3M(EH) (R = H, CH3; M = Cr, Mo, W; E = S, Se) can be obtained by three different routes, sometimes in quite good yields. Thus, the sulfur and selenium derivatives can be synthesized by insertion of the respective elements into the metal-hydrogen bonds of the precursor compounds (η5-C5R5)(CO)3MH. This species also reacts with potassium selenocyanate to yield the hydrogenselenido derivatives (η5-C5R5)(CO)3M(SeH) which can also be obtained by treatment of the methyl complexes (η5-C5R5)(CO)3M(CH3 (M = Mo, W) with HBF4 and Li[SeH]. The corresponding hydrogentellurido compounds are probably formed by these preparative methods but appear to be quickly converted into either the dinuclear tellurium bridge products (μ-Te)[(η5-C5R5)(CO)3M]2 (M = Mo) or into the hydrido complexes (η5-C5R5)(CO)3MH (M= Mo, W) by release of elemental tellurium.  相似文献   

5.
The reactions of the half-sandwich molybdenum(III) complexes CpMo(η4-C4H4R2)(CH3)2, where Cp=η5-C5H5 and R=H or CH3, with equimolar amounts of B(C6F5)3 have been investigated in toluene. EPR monitoring shows the formation of an addition product which does not readily react with Lewis bases such as ethylene, pyridine, or PMe3. The analysis of the EPR properties and the X-ray structure of a decomposition product obtained from dichloromethane, [CpMo(η4-C4H6)(μ-Cl)(μ-CH2)(O)MoCp][CH3B(C6F5)3], indicate that the borane attack has occurred at the methyl position.  相似文献   

6.
The title compounds react with unidentate ligands, L, containing either phosphorus or arsenic donor atoms to yield the corresponding compounds of the type Ru(η5---C5Me4Et)(CO)LX; with didentate phosphorus donor ligands the major species formed is the bridged complex {Ru(η5---C5Me4Et)(CO)X}2{Ph2P(CH2)nPPh 2} n = 1, X = Br; n = 2, X = Cl). In contrast, unidentate ligands containing nitrogen donor atoms such as pyridine did not react with Ru(η5---C5Me4Et)(CO)2Cl although reaction with 1,10-phenanthroline or diethylenetriamine yielded the ionic products [Ru(η5---C5Me4Et)(CO)L]+Cl (L = phen or (NH2CH2CH2)2NH). Reaction of Ru(η5---C5Me4Et)(CO)2Br with AgOAc yielded the corresponding acetato complex Ru(η5---C5Me4Et)(CO)20Ac. Ru(η5--- C5Me4Et)(CO)2X reacts with AgY (Y = BF4 or PF6) in either acetone or dichloromethane to give the useful solvent intermediates [Ru(η5---C5Me4Et)(CO)2(solvent)]+Y, which readily react with ligands L to yield ionic derivatives of the type [Ru(η5---C5Me4Et)(CO)2L]+Y (where L = CO, NCMe, py, C2H4 or MeO2CCCCO2Me).  相似文献   

7.
Reaction of optically active ketone complexes (+)-(R)-[(η5-C5H5)Re(NO)-(PPh3)(η1-O=C(R)(CH3)]+ BF4 (R = CH2CH3, CH(CH3)2m C(CH3)3, C6H5) with K(s-C4H9)3BH gives alkoxide complexes (+)-(RS)-(η5-C5H5)Re(NO)(PPh3)-(OCH(R)CH3) (73–90%) in 80–98% de. The alkoxide ligand is then converted to Mosher esters (93–99%) of 79–98% de.  相似文献   

8.
The reaction of (η5-cyclopentadienyl)(η4-tetraphenylcyclobutadiene)cobalt (1) with excess Cr(CO)6 yielded several heterometallic compounds: 2, 3 (3′ and 3″), 4 and 5 with, respectively, one, two, three and four phenyl rings complexed with Cr(CO)3 fragment(s). These compounds were characterized by mass, infrared, 1H and 13C NMR spectra. The crystal structure of 5 was determined. In 5 the four Cr(CO)3 fragments are on the same side of the CpCo fragment; whereas, the two Cr(CO)3 fragments of 3′, the precursor of 5, are pointed in a different direction from the CpCo fragment. The cyclopentadienyl ring shows a static disorder around the axis that passes through the cobalt and the centre of the ring.  相似文献   

9.
Six new cluster derivatives [Rh2Co2(CO)6(μ-CO)442-HCCR)] (R=FeCp2 1, CH2OH 2, (CH3O)C10H6CH(CH3)COOCH2CCH 3) and [RhCo3(CO)6(μ-CO)442-HCCR)] (R=FeCp2 4, CH2OH 5, (CH3O)C10H6CH(CH3)COOCH2CCH 6) were obtained by the reactions of [Rh2Co2(CO)12] and [RhCo3(CO)12] with substituted 1-alkyne ligands HCCR [R=FeCp2 7, CH2OH 8, (CH3O)C10H6CH(CH3) COOCH2CCH 9] in n-hexane at room temperature, respectively. Alkynes insert into the Co---Co bond of the tetranuclear clusters to give butterfly clusters. [Rh2Co2(CO)6(μ-CO)442-HCCFeCp2)] (1) was characterized by a single-crystal X-ray diffraction analysis. Reactions of 1, 2 with 7, 8 and ambient pressure of carbon monoxide at 25 °C gave two known cluster complexes [Co2(CO)62, η2-HCCR)] (R=FeCp2 10, CH2OH 11), respectively. All clusters were characterized by element analysis, IR and 1H-NMR spectroscopy.  相似文献   

10.
Oxidative addition of ethyl iodide to PdMe2(2,2′-bipyridyl) in (CD3)2CO gives the unstable “PdIMe2Et(bpy)”, which undergoes reductive elimination to form PdIR(bpy) (R = Me, Et), ethane, and propane. Ethene and palladium metal are also formed, and are attributed to decomposition of PdIEt(bpy) via β-elimination. Similar results are obtained with n-propyl iodide, although a palladium(IV) intermediate was not detected, but CH2=CHCH2X (X = Br, I) and PhCH=CHCH2Br give isolable complexes fac-PdXMe2(CH2CH=CHR)(L2) (R = H, Ph; L2 = bpy, phen). The propenyl complexes decompose at ambient temperature to form ethane, a trace of PdXMe(L2), and mixtures of [Pd(η3-C3H5)(L2)]X and [Pd(η3-C3H5)(L2)]-[Pd(η3-C3H5)X2]; for fac-PdBrMe2(CH2CH=CH2)(bpy) the major palladium(II) product is [Pd(η3-C3H5)(bpy)]Br.  相似文献   

11.
The monocyclooctatetraene uranium complex [U(COT)(I)2(THF)2] (COT=η-C8H8; THF=tetrahydrofuran), isolated from the reaction of bis(cyclooctatetraene)uranium with iodine, is a precursor for the synthesis of the alkyl derivatives [U(COT)(CH2Ph)2i (HMPA) 2], [U(COT)(CH2SiMe3)2(HMPA)] (HMPA=hexamethyl phosphorous triamide) and [U(COT)CH2SiMe3)3] [Li(THF)3] and of the mixed-ring compounds [U(COT)(η-C5R5)(I)] (R=H or Me). The last were used to prepare the amide and alkyl complexes [U(COT)(η-C5H5)(N{SiMe3}2)] and [U(COT)(η-C5Me5)(CH2SiMe3)].  相似文献   

12.
A detailed in situ 13C and 1H NMR spectroscopic characterization of the following families of alkylperoxo complexes of titanium is presented: Ti(η2-OOtBu)n(OiPr)4−n, where n = 1–4; binuclear complexes [(iPrO)3Ti(μ-OiPr)2Ti(OiPr)22-OOtBu)] and [(η2-OOtBu)(iPrO)2Ti(μ-OiPr)2Ti(OiPr)22-OOtBu)]; complexes with β-diketonato ligands: Ti(LL)2(OEt)(η2-OOtBu), Ti(LL)2(OiPr)(η2-OOtBu), Ti(LL)22-OOtBu)2, Ti(LL)2(OtBu)(η1-OOtBu), where HLL = acetylacetone, dipivaloylmethane. These alkylperoxo complexes could not be isolated due to their instability and were studied in situ at low temperatures. Whereas the side-on (η2) coordination mode of tert-butylperoxo ligand is generally preferable, the end-on (η1) coordination caused by spatial hindrance from surrounding bulky ligands is found in two cases. The quantitative data on the reactivity of alkylperoxo complexes found towards sulfides and alkenes were obtained. The system TiO(acac)2/tBuOOH in C6H6 was reinvestigated using 13C and 1H NMR spectroscopy. The structure of the complex Ti(acac)2{CH3C(O)(OOtBu)COO} actually formed in this system was elucidated. Four types of titanium(IV) alkylperoxo complexes were detected in the Sharpless–Katsuki catalytic system using 13C NMR spectroscopy.  相似文献   

13.
Transamination reactions utilizing the compound mercuric bis(trimethylsilyl)amide, Hg{N(SiMe3)2}2, in tetrahydrofuran (THF), and the metals Na, Mg, Ca, Sr, Ba and Al have been investigated. Thus the THF solvated compounds Na[N(SiMe3)2]·THF and M[N(SiMe3)2]2·2THF, M = Mg, Ca, Sr and Ba (1–4), have been prepared. The X-ray crystal structures of 1 and the related manganese compound Mn[N(SiMe3)2]2·2THF (5) are reported. Interaction of the silylamides, 2–4, with a range of crown ethers apparently proceeded with elimination of silylamine, (Me3Si)2NH, and novel ring opening of the crown ethers, generating species containing a donor alkoxide ligand with a vinyl ether function, presumably, ---O(CH2CH2O)nCH=CH2 (n = 3−5). The silylamides 2–4 were also cleanly converted to the corresponding alkoxides (from 1H NMR data) in reactions with stoichiometric quantities of 3-ethyl-3-pentanol.  相似文献   

14.
The compound [RU332- -ampy)(μ3η12-PhC=CHPh)(CO)6(PPh3)2] (1) (ampy = 2-amino-6-methylpyridinate) has been prepared by reaction of [RU3(η-H)(μ32- ampy) (μ,η12-PhC=CHPh)(CO)7(PPh3)] with triphenylphosphine at room temperature. However, the reaction of [RU3(μ-H)(μ3, η2 -ampy)(CO)7(PPh3)2] with diphenylacetylene requires a higher temperature (110°C) and does not give complex 1 but the phenyl derivative [RU332-ampy)(μ,η 12 -PhC=CHPh)(μ,-PPh2)(Ph)(CO)5(PPh3)] (2). The thermolysis of complex 1 (110°C) also gives complex 2 quantitatively. Both 1 and 2 have been characterized by0 X-ray diffraction methods. Complex 1 is a catalyst precursor for the homogeneous hydrogenation of diphenylacetylene to a mixture of cis- and trans -stilbene under mild conditions (80°C, 1 atm. of H2), although progressive deactivation of the catalytic species is observed. The dihydride [RU3(μ-H)232-ampy)(μ,η12- PhC=CHPh)(CO)5(PPh3)2] (3), which has been characterized spectroscopically, is an intermediate in the catalytic hydrogenation reaction.  相似文献   

15.
Synthesis and spectroscopic data of carbonyl(η5-cyclopentadienyl)(η2-cyclopropylketenyl) (trimethylphosphine)tungsten and dicarbonyl(η5-cyclopentadienyl)(η1-cyclopropylketenyl) (trimethylphosphine)tungsten are reported. The electronic structure of, and types of bonding in carbonyl(η5-cyclopentadienyl)(η2-cyclopropylketenyl) (trimethylphosphine)tungsten are described.  相似文献   

16.
In order to understand the nature of the putative cationic 12-electron species [M(η51-C5R4SiMe2NR′)R″]+ of titanium catalysts supported by a linked amido-cyclopentadienyl ligand, several derivatives with different cyclopentadienyl C5R4 and amido substituents R′ were studied systematically. The use of tridentate variants (C5R4SiMe2NCH2CH2X)2− (C5R4=C5Me4, C5H4, C5H3tBu; X=OMe, SMe, NMe2) allowed the NMR spectroscopic observation of the titanium benzyl cations [Ti(η51-C5Me4SiMe2NCH2CH2X)(CH2Ph)]+. Isoelectronic neutral rare earth metal complexes [Ln(η51-C5R4SiMe2NR′)R″] can be expected to be active for polymerization. To arrive at neutral 12-electron hydride and alkyl species of the rare earth metals, we employed a lanthanide tris(alkyl) complex [Ln(CH2SiMe3)3(THF)2] (Ln=Y, Lu, Yb, Er, Tb), which allows the facile synthesis of the linked amido-cyclopentadienyl complex [Ln(η51-C5Me4SiMe2NCMe3)(CH2SiMe3)(THF)]. Hydrogenolysis of the linked amido-cyclopentadienyl alkyl complex leads to the dimeric hydrido complex [Ln(η51-C5Me4SiMe2NCMe3)(THF)(μ-H)]2. These complexes are single-site, single-component catalysts for the polymerization of ethylene and a variety of polar monomers such as acrylates and acrylonitrile. Nonpolar monomers such as -olefins and styrene, in contrast, give isolable mono-insertion products which allow detailed studies of the initiation process.  相似文献   

17.
Reaction of ansa-cyclopentadienyl pyrrolyl ligand (C5H5)CH2(2-C4H3NH) (2) with Ti(NMe2)4 affords bis(dimethylamido)titanium complex [(η5-C5H4)CH2(2-C4H3N)]Ti(NMe2)2 (3) via amine elimination. A cyclopentadiene ligand with two pendant pyrrolyl arms, a mixture of 1,3- and 1,4-{CH2(2-C4H3NH)}2C5H4 (4), undergoes an analogous reaction with Ti(NMe2)4 to give [1,3-{CH2(2-C4H3N)}25-C5H3)]Ti(NMe2) (5). Molecular structures of 3 and 5 have been determined by single crystal X-ray diffraction studies.  相似文献   

18.
The reaction of nickelocene with phenyllithium, ortho-, meta- and para-methylphenylmagnesium bromide, and 2-((dimethylamino)methyl) phenyllithium are studied. It was found that unstable compounds {CpNiC6H4R} (R = H, o-, m-, p-CH3) are formed in those reactions. For R = CH2N(CH3)2, a stable compound, CpNiC6H4CH2N(CH3)2, is formed due to intramolecular coordination. In other cases, mainly coupling reactions occur and biphenyl, bitolyl and higher coupling products are formed. Compound (CpNiC6H4R) is also formed as a product of thermal decomposition of Cp{η2− C2H4)NiC6H4R. It reacts further to form the same products as above. The mechanism of the coupling reactions is proposed and discussed.  相似文献   

19.
The η3-allyliridium complexes [Ir(η3-2-RC3H4)(PiPr3)2] (2, 3) have been prepared in a one-pot reaction from [IrCl(C2H4)2]2, 2-RC3H4Li and PiPr3 in 70% yield. Compounds 2 and 3 react spontaneously with H2 to give [IrH5(PiPr3)2] (7) and with excess PhC=CH and MeCCH to give [Ir(CCPh)3(PiPr3)2] (5) and [Ir(CCMe)2(CMe=CH2)(PiPr3)2] (6), respectively. From 2 (or 3) and two equivalents of PhCCH the complex [IrH(CCPh)2(PiPr3)2] (4) has been obtained. Treatment of 2 or 3 with CF3CO2H does not lead to a cleavage of the allyl-metal bond but affords the allyl(hydrido)-iridium(III) complexes [IrH(η3-2-RC3H4)(η1-P2CCF3)(PiPr3)2] (8, 9) in almost quantitative yield.  相似文献   

20.
The compounds C5H5Co(η2-CH3CHS)PMe3 (I) and C5H5Co(η2-CH3CHSe)PMe3 (II) are prepared from C5H5Co(CO)PMe3, CH3CHBr2 and NaSH or NaSeH, respectively. The synthesis of the corresponding rhodium complexes C5H5Rh(η2-CH3CHS)P(i-Pr)3 (VI) and C5H5Rh(η2-CH3CHSe)P(i-Pr)3 (VII) has been achieved through hydrogenation of C5H5Rh(η2-EC=CH2)P(i-Pr)3 (E = S, Se), using RhCl(PPh3)3 as a catalyst. The crystal structure of VII has been determined.  相似文献   

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