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1.
η5-C5H5(CO)2FeNa reacts with the benzimide chlorides C6H5(Cl)CNR (R  CH(CH3)2, C6H5) in boiling THF to give the η1-iminoacyl complexes η5-C5H5 (CO)2Fe[η1-C(C6H5)NR]. Alternatively, the new Fe complexes [η5-C5H5(CO)FeC(C6H5)N(CH3)C(C6H5)NCH3PF6 (IV) and [η5-C5H5(CO)2FeC(C6H5)N(CH3)C(C6H5)NCH3]PF6 (V) are formed under the same conditions, if R  CH3. Hudrolysis of the CN single bond of the ligand in V, not stabilized by a chelate effects as in IV, results in the formation of [η5-C5H5(CO)2FeC(C6H5)NHCH3]PF6 (VII). Reaction of η5-C5H5(CO)2 with N-benyzylbenzimido chloride yields η5-C5H5(CO)2FeCH2C6H5 as the only isolated product.  相似文献   

2.
From measurements of the heats of iodination of CH3Mn(CO)5 and CH3Re(CO)5 at elevated temperatures using the ‘drop’ microcalorimeter method, values were determined for the standard enthalpies of formation at 25° of the crystalline compounds: ΔHof[CH3Mn(CO)5, c] = ?189.0 ± 2 kcal mol?1 (?790.8 ± 8 kJ mol?1), ΔHof[Ch3Re(CO)5,c] = ?198.0 ± kcal mol?1 (?828.4 ± 8 kJ mo?1). In conjunction with available enthalpies of sublimation, and with literature values for the dissociation energies of MnMn and ReRe bonds in Mn2(CO)10 and Re2(CO)10, values are derived for the dissociation energies: D(CH3Mn(CO)5) = 27.9 ± 2.3 or 30.9 ± 2.3 kcal mol?1 and D(CH3Re(CO)5) = 53.2 ± 2.5 kcal mol?1. In general, irrespective of the value accepted for D(MM) in M2(CO)10, the present results require that, D(CH3Mn) = 12D(MnMn) + 18.5 kcal mol?1 and D(CH3Re) = 12D(ReRe) + 30.8 kcal mol?1.  相似文献   

3.
A new metal-metal bonded binuclear iron system [Me2SiCH2CH2SiMe2][η5-C5H4Fe(CO)2]2 (2) has been prepared by treating two equivalents of NaCp with one equivalent of ClSi(Me)2CH2CH2SiClMe2 obtaining the intermediate (C5H5)Si(Me)2CH2CH2Si(Me)2(C5H5) which then is directly allowed to react with Fe(CO)5 given 2 in 30% yield. From this cyclopentadienyldisilyl linked system three new binuclear irom complexes are formed. Treatment of 2 with Na/Hg in THF produced the dianion [Me2SiCH2CH2SiMe2][η5-C5H4Fe(CO)2?]2 which is quenched with CH3I giving [Me2SiCH2CH2SiMe2][η5-C4H4Fe(CO)2CH3]2 (4) in 76% yield. Complex 2 is oxidized with 1.2 equivalent of I2 to give [Me2SiCH2CH2SiMe2][η5-C5H4Fe(CO)2I]2 (5) in 85% yield. Photolysis of 5 (1 equiv.) and PPh3 (3 equiv.) results in the formation of the bis-substituted compound [Me2SiCH2CH2SiMe2][η5-C5H4Fe(CO)(PPh3)I]2 (6). These four new binuclear iron complexes are characterized by 1H, 13C, and 31P NMR and IR spectroscopy.  相似文献   

4.
Incoherent quasi-eleastic neutron scattering experiments: using different resolutions and a wide Q range, have been performed on polycrystalline samples of Cr(CO)36C6H6) and Mn(CO)35C5H5) in the 280–320 K temperature range. It is shown that aromatic rings are involved into a reorientational process characterized by an activation energy of ≈ 16 kJ mol?1 and by correlation times of the order of 2 × 10?11 s and 5 × 10?11 s at 300 K for C6H6 and C5H5 rings respectively. Experimental elastic incoherent structure factors are in agreement with the 2π/6 and 2π/5 jump models and the fitted spectra confirm these models. From a comparison with heat-capacity results we conclude that M(CO)3 groups are fixed during the reorientational process. Finally a comparison with literature data is presented.  相似文献   

5.
The synthesis of the compounds [Mn(CO)3XC6H5]4 (X = Se, S) by UV irradiation of a mixture of Mn2(CO)10 with Se2(C6H5)2 or S2(C6H5)2 is described.  相似文献   

6.
The reactions of Fe(CO)5, Fe(CO)4P(C6H5)3, M(CO)6 (M  W, Mo, Cr), and (CH3C5H4Mn(CO)3 with KH and several boron and aluminium hydrides were investigated. Iron pentacarbonyl was converted quantitatively to K+Fe(CO)4-(CHO) by hydride transfer from KBH(OCH3)3 allowing isolation of [P(C6H5)3]2-Nn+Fe(CO)4(CHO)? in 50% yield. Lower yields were obtained with LiBH(C2H5)3, and other hydride sources gave little or no formyl product. The stability of Fe(CO)4(CHO)? in THP was found to depend on the cation, decreasing in the order [P(C6H5)3]2N+ > K+ > Na+ > Li+. No formyl complexes were isolated and no spectroscopic evidence for formyl formation was observed in the reactions of the other transition metal carbonyls with several hydride sources. Fe(CO)4-P(C6H5)3 gave K2Fe(CO)4 when treated with KHB(OCH3)3. When treated with LiBH(C2H5)3, W(CO)6 gave a mixture of HW2(CO)10?and (OC)5W(COC2H5)?; the latter was methylated to give the carbene complex (OC)5WC(OCH3)C2H5.  相似文献   

7.
Reaction of photogenerated (η5?C5H5)2W2(CO)4 with acetylene at 25°C yields a complex of the formula (η5-C5H5)2W2(CO)4(C2H2). The crystal structure of the complex shows it to have a tetrahedrane-like W2C2 core. The C—C bond distance of the C2H2 unit is 1.33 Å which is close to that of ethylene, considerably longer than the 1.20 Å for acetylenes. The W—W distance is 2.987 Å which is ~0.25 Å shorter than the W—W distance in (η5-C5H5)2W2(CO)6 but longer than that expected for (η5-C5H5)2W2(CO)4. By analogy to the parent (η5-C5H5)2M2(CO)6 species, the near-UV absorption in (η5-C5H5)2M2(CO)4(C2H2) is assigned to a σb → σ* transition. Owing to the shorter M—M bond in the C2H2 adducts, the σb → σ* absorption is at higher energy than in the (η5-C5H5)2M2(CO)6 complexes.  相似文献   

8.
The fluorocarbon soluble, binuclear ruthenium(I) complexes [Ru(μ-O2CMe)(CO)2LF]2, where LF is the perfluoroalkyl substituted tertiary phosphine, P(C6H4-4-CH2CH2(CF2)7CF3)3, or P(CH2CH2(CF2)5CF3)3, were synthesized and partition coefficients for the complexes in fluorocarbon/hydrocarbon biphases were determined. Catalytic hydrogenation of acetophenone to 1-phenylethanol in benzotrifluoride at 105 °C occured in the presence of either [Ru(μ-O2CMe)(CO)2P(C6H4-4-CH2CH2(CF2)7CF3)3]2 (1) or [Ru(μ-O2CMe)(CO)2P(CH2CH2(CF2)5CF3)3]2 (2). The X-ray crystal structure of [Ru(μ-O2CMe)(CO)2P(CH2CH2(CF2)5CF3)3]2 was determined. The compound exhibited discrete regions of fluorous and non-fluorous packing.  相似文献   

9.
RuHCl(CO)2(PPh3)2 reacts with ethylene under mild conditions (25 psi, 80°C) to yield a propionyl derivative RuCl(C[O]C2H5)(CO)(PPh3)2 which is believed to be coordinatively unsaturated. Unlike the acetyl analogue, RuCl[C[O]C2H5(CO)-(PPh3)2 does not isomerize to RuCl(C2H5)(CO)2(PPh3)2 in solution. Under one atmosphere of carbon monoxide, RuCl(C[O]C2H5(CO)(PPh3)2 exists in equilibrium with two species believed to be RuCl(C[O]C2H5)(CO)2(PPh3)2 and [Ru(C[O]C2H5)(CO)3(PPh3)2]Cl. RuCl(C[O]C2H5)(CO)(PPh3)2 reacts with CO/ AgClO4 to give mer-[Ru(C[O]C2H5)(CO)3(PPh3)2]ClO4, p-tolylisocyanide (RNC) and NaClO4 to give cis-[Ru(C[O]C2H5)(CO)(CNR)2(PPh3)2ClO4, and hydrochloric acid to yield the hydroxycarbene complex, RuCl2(CO)(C[OH]C2H5)(PPh3)2.  相似文献   

10.
[Cp4Fe4(CO)4] (1) reacts with p-BrC6H4Li and MeOH in sequence to afford the functionalized cluster [Cp3Fe4(CO)4(C5H4-p-C6H4Br)] (2), while the reaction of 2 with n-BuLi and MeOH produces [Cp2Fe4(CO)4(C5H4Bu)(C5H4-p-C6H4Br)] (3). The double cluster [Cp3Fe4(CO)4(C5H4)]2(p-C6H4) (4) has been prepared by treatment of [Cp4Fe4(CO)4] with p-C6H4Li2 and MeOH in sequence. The electrochemistry of 2 and 4, as well as the crystal structure of 4 have been investigated.  相似文献   

11.
The compounds [Os3(CO)10{μ,η3-(SCH2CH2SCCHC(O)CHCH(C5H4)Fe (C5H5)}] (2), [Os3(CO)9{μ,η3-(SCH2CH2SCCHC(O)CHCH(C5H4)Fe(C5H5)}] (3) and [Os3(CO)832-{CCHC(O)CHCH(C5H4)Fe(C5H5)}(SCH2CH2S)}] (4) have been obtained by rupture of S-C bonds in the ketene dithioacetal [C5H5FeC5H4CHCHC(O)CHC(SCH2CH2S)], in their reaction with the activated cluster [Os3(CO)10(NCMe)2]. The presence of an oxametallacycle in these derivatives has been confirmed by an X-ray diffraction analysis. The electrochemical study has indicated the ability of these compounds to modify the electrode surfaces.  相似文献   

12.
Complete demethylation of Cp2Ti(CH3)2 in dichloromethane with 2 M equivalent of [η5-(C5H4COOH)]Cr(CO)2NO (5), [η5-(C5H4COOH)]Cr(NO)2X] (X = Cl 6, X = I 7), and [η5-(C5H4COOH)]W(CO)3CH3 (8); gives Cp2Ti{[OC(O)C5H4]Cr(CO)2NO}2 (13), Cp2Ti{[OC(O)C5H4]Cr(NO)2Cl}2 (14), Cp2Ti{[OC(O)C5H4]Cr(NO)2I}2 (15),and Cp2Ti{[OC(O)C5H4]W(CO)3CH3}2 (16), respectively. The chemical shifts of C(2)-C(5) carbon atoms of compounds 13-15 have been assigned using two-dimensional HetCOR NMR spectroscopy. The assigned chemical shifts were compared with the NMR data of their analogues of ferrocene, and the opposite correlation on the assignments was observed for cynichrodenoyl moieties.  相似文献   

13.
The reaction of M3(CO)12 (M = Ru, Fe) with excess bi-2,7-cyclooctadienyl (C16H22) 1 gave a mononuclear complex M(CO)3(1,2,1′-2′-η4-C16H22), 2a (M = Ru) or 3a (M = Fe), in good yield. Treatment of 2a with Fe3(CO)12 or reaction of 3a with Ru3(CO)12 gave the heterobimetallic complex RuFe(CO)6(C10H22) consisting of a ruthenacyclopentadiene unit coordinated to an Fe(CO)3 fragment, as confirmed by 1H NMR and X-ray studies. The corresponding homobimetallic complex Ru2(CO)6(C16H22) was obtained from the 1:1 reaction of 2a with Ru3(CO)12, while the direct reaction of 1 with Ru3(CO)12 gave Ru2(CO)6(C16H20) preferentially with a loss of two hydrogen atoms. The pathway for formation of these bimetallic complexes was interpreted as a dehydrogenative metallacyclization followed by hydrogen transfer.  相似文献   

14.
Phosphonium adduct formation via attack of tri-n-butylphosphine on the cations [(C7H7)M(CO)3]+ (M = Cr, Mo, W) obeys the rate law, Rate = k [complex] [PBu3]. The very similar rate constants for the Cr, Mo and W complexes confirm the similar electrophilicities of the tropylium rings in these cations, and also support the view that there is direct addition to the rings. The related complexes [(C6H7)Fe(CO)3]BF4 and [(C6H6)Mn(CO)3]BF4 also form adducts with PBu3, and the quantitative reactivity order [(C6H7)Fe(CO)3]+ > [(C7H7)Cr(CO)3]+ » [(C6H6)Mn(CO)3]+ (160:60:1) has been established.  相似文献   

15.
The reactions of [Fe3(CO)12] or [Ru3(CO)12] with RNC (R=Ph, C6H4OMe-p or CH2SO2C6H4Me-p) have been investigated using electrospray mass spectrometry. Species arising from substitution of up to six ligands were detected for [Fe3(CO)12], but the higher-substituted compounds were too unstable to be isolated. The crystal structure of [Fe3(CO)10(CNPh)2] was determined at 150 and 298 K to show that both isonitrile ligands were trans to each other on the same Fe atom. For [Ru3(CO)12] substitution of up to three COs was found, together with the formation of higher-nuclearity clusters. [Ru4(CO)11(CNPh)3] was structurally characterised and has a spiked-triangular Ru4 core with two of the CNPh ligands coordinated in an unusual μ32 mode.  相似文献   

16.
The bis(μ-dimethylphosphido)dicobalt complex [C5H5Co(μ-PMe2)]2 (II) has been prepared from Co(C5H5 and PMe2H on almost quantitative yield. It has also been made by reduction of [C5H5Co(PMe2H)3]I2 (IV) with NaH and from the reaction of [C5H5(PMe3)Co(μ-CO)2Mn(CO)C5H4Me] with PMe2H. Protonation of II with CF3CO3H in the presence of NH4PF6 produces the PF6? salt of the (μ-hydrido)dicobalt cation [(C5H5Co)2(μ-H)(μ-PMe2)2]+ (V) which reacts with aqueous NaOH to give II. Similar treatment of [C5H5Co(μ-SMe]2 with CF3CO2H/NH4PF6 leads to the formation of [(C5H5Co)2(μ-SMe)3]PF6 (VI). The nucleophilic character of complex II has also been demonstrated in the reaction with SO2, which gives [(C5H5Co)2 (μ-PMe2)2(μ-SO2)] (VII). The crystal and molecular structures of II, the corresponding bis(μ-diphenylphosphido) compound [C5H5Co(μ-PPh2)]2 (III) and the BPh4? salt of V have been determined. In both neutral complexes the Co2P2 cores are similarly puckered, as reflected in the dihedral angle between the CoP2 and P2Co′ planes of 108.1 and 105.0° for R = Me and Ph, respectively. The CoCo bond length and the PP interatomic separations are essentially identical for both dimers. The CoCo bond length in V, 2.517(1) Å, is lower than that in II, 2.542(2) Å. The only obvious structural variation between the unprotonated and the protonated species is the large difference in the degree of canting of the C5H5 rings with respect to each other. The angles between the C5(ring)-centroid and the CoCo line are ca. 150 and 167° in II and V, respectively, which reflects the influence of the bridging hydride ligand in the cationic complex.  相似文献   

17.
The synthesis of the title compounds by reaction of (η5-C5H5)Mo(CO)3CH3 with excess As(C6H5)3 or Sb(C6H5)3 in CH3CN is described. Thermal decarbonylation results in the preferential ejection of As(C6H5)3 or Sb(C6H5)3 from the new acetyl complexes, which accounts for the failure of previous attempts to synthesise the acetyl complexes. Photolytic decarbonylations lead to new-alkyl complexes (η5-C5H5)Mo(CO)2(CH3)E(C6H5)3. IR and NMR data for the new complexes are tabulated.  相似文献   

18.
Syntheses and single-crystal X-ray diffraction studies have been completed on two cycloruthenapentadienyl (CO)6Ru2L2 derivatives, with L = CH2OHC = CCH2OH and C2H5C=CCH2CH2OH respectively. Crystal data are as follows: for [(CO)3RuC4(CH2OH)4]Ru(CO)3·H2O, P21/c, a 13.72(1), b 9.501(4), c 14.86(1) Å, β 101.10(6)°, Rw = 0.052 for 1911 reflections; for [(CO)3RuC4(CH2CH2OH)2(C2H5)2]Ru(CO)3, P21/c, a 9.191(3), b 16.732(4), c 14.903(3) Å, β 113.61(4)°, Rw = 0.042 for 2865 reflections. Both compounds are built up from binuclear units, each unit being regarded as a Ru(CO)3 fragment π-bonded to a cycloruthenapentadienyl ring. The molecular parameters are compared with those of known cyclometallapentadienyl complexes of transition metals. The presence of a semi-bridging CO group is discussed.  相似文献   

19.
The new dianionic ligand [Na]2[C5H4CO2(CH2)2NTs] (1) having an alkoxycarbonyl and an amide group in the same side chain has been prepared by a single step, high yield procedure. The synthesis of the related rhodium complexes [Rh{η5-C5H4CO2(CH2)2N(H)Ts}(NBD)] (3) and [Rh{η5-C5H4CO2 (CH2)2N(Me)Ts}(NBD)] (4) is reported as well as their X-ray molecular structures.  相似文献   

20.
Treatment of complexes of the type [M(CO)4{(Ph2P)2CCH2}] (M = W, Mo or Cr) with functionalized lithium reagents, LiR, followed by hydrolysis gives complexes of the type [M(CO)4{PH2P)2CHCH2R}] in high yields; R = C6H4Me-4, C6H4OMe-2, C6H3(OMe)2-2,6, C6H4OH-2, C6H4(COOH)-2, CH2COPh or CH2COMe. IR, and 31P and 1H NMR data are given.  相似文献   

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