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1.
[(C5H5Co)2(μ-PMe2)2(μ-H)]BF4 ([II]BF4) reacts with C2(CO2Me)2 to give the products III and IV. The ionic compound III which formally is a 11 adduct of [II]BF4 and C2(CO2Me)2 has been characterized by X-ray structure analysis. III contains the group O=C(OMe)CH=C(CO2Me)PMe2 as a 6-electron donor ligand chelated to a cobalt atom and π-bonded to the other cobalt atom. Complex IV is a neutral compound which also can be obtained from [C5H5Co(μ-PMe2)]2 (I) and C2(CO2Me)2.  相似文献   

2.
A reinvestigation of the reaction between C2(CO2Me)2 and RuH(PPh3)2(η-C5H5) and some related complexes is reported. Initial cis addition is followed by conversion into the trans isomer. In the case of the bis-(PPh3) complex, isomerisation is followed by chelation of the ester CO group with concomitant displacement of one PPh3ligand. The resulting chelate complex reacts with CO or CNBut to give the (Z)-RuC(CO2Me)CH(CO2Me) complexes; the (E)-isomer of the carbonyl complex is obtained by addition of C2(CO2Me)2to RuH(CO)(PPh3)(η-C5H5). The 1Hand 13C NMR spectra are not a reliable guide to assignment of the stereochemistry of the vinyl group. Other products isolated from the initial reaction are the bis-insertion product Ru{C(CO2Me)C(CO2Me)C(CO2Me)CH(CO2Me)} -(PPh3)(η-C5H5) and the 1/2 PPh3/C2(CO2Me)2 adduct. The molecular structures of Ru{(Z)-C(CO2Me)CH(CO2Me)}(CO)(PPh3(η-C5H5) · 0.5EtOH, Ru{(E)-C(C2Me)CH(CO2Me)}(dppe)(η-C5H5) and Ru{C(CO2Me)C(CO2Me)C(CO2-Me)CH(CO2Me)}(PPh3)(η-C5H5) have been determined. The cis isomer is monoclinic, space group P21,with a 9.328(8), b 17.385(10), c 10.356(7) Å, β 101.78(3)° and Z = 2; 2107 data with I ≥ 2.5σ(I) were refined to R = 0.076 Rw = 0.085. The trans isomer is triclinic, space group P1, with a 10.404(7) b 11.221(6), c 13.230(9) Å, α 92.67(5), β 110.56(5), γ 106.21(5)° and Z = 2; 2520 data with I ≥ 2.5σ(I) were refined to R = 0.055 Rw = 0.068. The butadienyl complex is monoclinic, space group P21/a, with a 19.655(8), b 8.674(4), c 21.060(5) Å, β 116.22(3)° and Z = 4; 2724 data with I ≥ 2.5σ(I) were refined to R = 0.042, Rw = 0.047.  相似文献   

3.
The complexes (η-C5Me5)2Rh2(μ-CO) {μ-η22-C(O)CRCR} are obtained from reactions between (η-C5Me5)2Rh2(CO)2 and the alkynes RCCR (R  CF3, CO2Me, or Ph) at 25°C. The molecular geometry of the complex with R  CF3 has been established by X-ray diffraction; the bridging 'ene-one' unit adopts a μ-η22 conformation. Other complexes isolated from these reactions include (η-C5Me5)Rh(C6R6) (R  CF3, CO2Me), (η-C5Me)2Rh2(C4R4) (R  CO2Me) and (η-C5Me5)2Rh2(CO2C2R2) (R  Ph). The reaction between (η-C5Me5)2Rh2(CO)2 and C6F5CCC6F5 gives (η-C5Me5)2Rh2(CO)2(C6F5C2C6F5). Mononuclear complexes such as (η-C5Me5)Co(C4R4CO) are the major products isolated from reactions between (η-C5Me5)2CO2(CO)2 and alkynes at 25°C.  相似文献   

4.
The asymmetric addend in the methanofullerene C61(CO2Me)[P(O)(OMe)2] polarizes and divides the fullerene shell into four nonequivalent fragments. According to DFT/PBE calculations, the most stable conformers of the methanofullerene C61(CO2Me)[P(O)(OMe)2] involve Coulomb interactions of the phosphoryl oxygen with one of the fullerene carbon atoms, which produces polarization of the corresponding fragment and asymmetry in bond lengths and atomic charges in the fullerene shell. Alternation and attenuation of changes in bond lengths along the conjugation branches was revealed.  相似文献   

5.
The reaction of C2(CO2Me)2 with trans-MeIr(CO)(PPh3)2 leads to a kinetic isomer which has been characterized by 1H and 31P NMR and infrared spectra and to a thermodynamic isomer which has been characterized by 1H and 31P NMR, infrared, microanalysis and X-ray crystallography. The isomerization occurs readily in solution at room temperature; somewhat more slowly at −20°C. The thermodynamically stable isomer of MeIr(CO)(PPh3)2[C2(CO2Me)2] crystallizes in the centrosymmetric monoclinic space group P21/c with a 14.847(2), b 16.648(2), c 15.656(3) Å, β 90.595(14)°, V 3869.7(11) Å3 and Z = 4. Single-crystal X-ray diffraction data were collected with a Syntex P21 automated diffractometer (Mo-Kα radiation, 2θ 5–40°) and the structure was solved and refined to RF 8.6% for all 3631 independent data (RF 4.0% for those 2318 data with |Fo| > 6σ(|Fo|)). The IrI center has a trigonal-bipyramidal environment with the methyl ligand and one PPh3 ligand occupying axial sites (Ir-Me 2.193(14), Ir-P(1) 2.425(4) Å). The C2(CO2Me)2 ligand is π-bonded to the iridium atom and lies with its triple bond parallel to the equatorial coordination plane; the equatorial ligands are completed by the second PPh3 ligand (Ir-P(2) 2.402(3) Å) and a CO ligand (Ir-CO 1.812(15) Å).  相似文献   

6.
The reactivity of a series of iridium? pyridylidene complexes with the formula [TpMe2Ir(C6H5)2(C(CH)3C(R)N H] ( 1 a – 1 c ) towards a variety of substrates, from small molecules, such as H2, O2, carbon oxides, and formaldehyde, to alkenes and alkynes, is described. Most of the observed reactivity is best explained by invoking 16 e? unsaturated [TpMe2Ir(phenyl)(pyridyl)] intermediates, which behave as internal frustrated Lewis pairs (FLPs). H2 is heterolytically split to give hydride? pyridylidene complexes, whilst CO, CO2, and H2C?O provide carbonyl, carbonate, and alkoxide species, respectively. Ethylene and propene form five‐membered metallacycles with an IrCH2CH(R)N (R=H, Me) motif, whereas, in contrast, acetylene affords four‐membered iridacycles with the IrC(?CH2)N moiety. C6H5(C?O)H and C6H5C?CH react with formation of Ir? C6H5 and Ir? C?CPh bonds and the concomitant elimination of a molecule of pyridine and benzene, respectively. Finally the reactivity of compounds 1 a – 1 c against O2 is described. Density functional theory calculations that provide theoretical support for these experimental observations are also reported.  相似文献   

7.
The rate constants for the addition of the OP·(OPri)2, Me3C·, and Me(CH2)3 ·CH2 radicals to the methano[60]fullerenes C60CX1X2 (X1 = X2 = CO2Et; X1 = CO2Me, X2 = OP(OMe)2; X1 = X2 = OP(OEt)2) were determined by ESR spectroscopy. Methanofullerenes are more reactive toward these radicals than C60 fullerene.  相似文献   

8.
《Polyhedron》1999,18(20):2575-2578
A synthesis of the title compound by hydrolysis of OsH(C6H5)(CO)(PtBu2Me)2 has the advantage that the product shows 1H NMR spectra free of the influence of hydrogen bonding to water impurity. In the solid state, the hydroxyl group interacts weakly with that of a neighbor. The Os–OH bond is rapidly split by H2, to give H2O and Os(H)2(H2)(CO)(PtBu2Me)2.  相似文献   

9.
《Polyhedron》1987,6(11):2031-2033
The reaction between BiCl3 and two equivalents of Na[(C5H4Me)Fe(CO)2] affords the title complex, [{(C5H4Me)Fe(CO)2}2BiCl]3, containing a planar six-membered Bi3Cl3 ring in which each bismuth is bonded to two chlorine atoms and two (C5H4Me) Fe(CO)2 fragments.  相似文献   

10.
Abstract

The reaction of the metalhydrides C5R5(CO)3Mo-H (R=H (la), Me (lb) with P(NMe2)3 leads to the metal-phosphorus double-bonded species 2a,b via the intermediate formation of C5(CO)2 (Me2N)3P)Mo-H, which can only be identified spec-troscopically in solution.  相似文献   

11.
Synthesis of Bridged Binuclear Titanocene Compounds – Crystal Structure of Cl2Ti[(C5H4)(C5H4)(Me)Si–Si(Me)(C5H4)(C5H4)]TiCl2 · PhMe Starting from Cp2(Me)Si–Si(Me)Cp2 1 the complexes X2Ti[(C5H4)(C5H4)(Me)Si–Si(Me)(C5H4)(C5H4)]TiX2 (X = Cl ( 2 a ); X = Me ( 3 )) were synthesized. The compounds were characterized by means of their 1H‐ and 13C‐n.m.r. and MS‐spectra. The crystal structure of 2 a · PhMe was determined.  相似文献   

12.
Summary A change of the reported medium of reaction oftrans- [CrCl2(OH2)4]Cl · 2H2O witho-R2AsC6H4CO2M (M = Na), from 95% ethanol to acetone, results in the change of an hydroxo — to an oxo — group (R = Ph), in the number of water molecules (R = Et or C6H11) and/or of ligand molecules (R =p-tolyl) in chromium(III)-arsine complexes. However, for R = Me, the same complex is obtained in each case. I.r. spectral data of these complexes favour the chelation of the carboxylate ion and non-coordination of arsenic(III) except for CrO(o-Ph2AsC6H4CO2) · 2.5 H2O in which arsenic(III) of the monotertiary arsine group appears to coordinate to chromium(III). This would seem to be the first example of this type. On the other hand, the reaction of CrO3 witho-R2As- C6H4CO2M (M = H) in 14.5 molar ratio in acetone yields only one type of complex,viz., [Cr3O3(o-R2As(O)C6H4-CO2)2(o-R2AsC6H4CO2)(H2O)6] · n H2O (n = 2, R = Me, C6H11 or Ph; n = O, R = Et). The arsine oxide molecules appear to chelate through As = 0 and the carboxylate oxygens while the arsine ligand binds only through the carboxylate oxygens leaving arsenic(III) uncoordinated as reported for the complexes obtained from the same reactants in 95% ethanol.  相似文献   

13.
The TCNX ligands TCNE (tetracyanoethene) and TCNQ (7,7,8,8-tetracyano-p-quinodimethane) react instantaneously with (C5R5)2(CO)2Ti, R=H or Me, to yield highly air-sensitive mononuclear complexes (C5R5)2(CO)Ti(TCNX) of which the soluble species (R=Me) were characterized also in the oxidized and reduced forms through cyclic voltammetry, EPR, IR and UV-vis spectroelectrochemistry. While oxidation at rather low potentials yields labile carbonyltitanium(IV) species of the TCNX ligands, the reduction occurs stepwise at unusually negative potentials, first on the ligand (to yield coordinated TCNX2−) and then on the metal (to form TiII). For the neutral complexes (C5R5)2(CO)Ti2+q(TCNXq) the results support a rather large amount of charge transfer 1<q<2 from the metal to the acceptors TCNX. Evidence for the previously formulated {(μ-TCNE2−)[(C5H5)2TiIV(CO)]2}(TCNE2−) could not be found. The complexes (C5R5)2(CO)Ti(TCNE) are compared with related compounds (C5R5)2BrV(TCNE), (C6R6)(CO)2Cr(TCNE) and (C5R5)(CO)2Mn(TCNE).  相似文献   

14.
Reaction mechanisms for the oxidative reactions of CO2 and COS with [(C5Me5)2Sm] have been investigated by means of DFT methods. The experimental formation of oxalate and dithiocarbonate complexes is explained. Their formation involve the samarium(III) bimetallic complexes [(C5Me5)2Sm‐CO2‐Sm(C5Me5)2] and [(C5Me5)2Sm‐COS‐Sm(C5Me5)2] as intermediates, respectively, ruling out radical coupling for the formation of the oxalate complex.  相似文献   

15.
The reaction of (OC)4Re[μ-E-HC? C(CO2Me)CS2]Re(CO)4, 1 with EtNH2 yielded two new complexes: Re(CO)4[C(H)? C(CO2Me)C(NHEt)? S], 2 , (52%) and Re(CO)3(NH2Et)[C(H)? C(CO2Me)C(NHEt)=S], 3a (24%) by competitive attack of the EtNH2 at the dithiocarboxylate grouping and at the hydrogen substituted olefinic carbon atom in 1 . In both cases there is a loss of one of the rhenium groupings. The reaction of the sulfurized and oxygenated derivatives of 1, (OC)4Re[EC(H)C(CO2Me)CS2]Re(CO)4, 4a (E=S), 4b (E=O) with EtNH2 yielded Re(CO)4[C(H)=C(CO2Me)C(NHEt)=S], 5a , the parent carbonyl of 3a , by exclusive attack of the amine at the hydrogen substituted olefinic carbon atom. The reaction of (OC)4Re[μ-SC(S)C(CO2Me)C(H)S]Re(CO)4, 6a (an isomer of 4a ) with EtNH2 produced a similar result. The reaction of 4a with Et2NH yielded Re(CO)4[μ-S2C=C(CO2Me)C=NEt2], 5b an N-ethyl substituted derivative of 5a . These results indicate that the addition of certain heteroatoms can have a directing effect upon the reactivity of these compounds with amines. Compounds 2 and 5a were characterized by single crystal x-ray diffraction analyses. Crystal Data: For 2 : space group = P1, a = 10.782(1) Å, b = 14.721(2) Å, c = 9.940(2) Å, a = 91.57(1)°, β = 93.61(1)°, γ = 70.774(9)°, Z = 4, 4516 reflections, R = 0.047 and for 5a : space group = P21/n, a = 11.389(2) Å, b = 9.660(2) Å, c = 14.756(3) Å, β = 103.36(2)°, Z = 4, 1601 reflections, R = 0.022.  相似文献   

16.
Conclusions The photochemical reactions of (CO)2(PPh3)MnC5H4Fe(CO)2C5H5 and (CO)2(PPh3)MnC5H4COFe(CO)2C5H5 with PPh3 gave the products of replacing the CO on the Fe atom by PPh3: respectively (CO)2(PPh3)MnC5H4Fe (CO)(PPh3)C5H5 and (CO)2(PPh3)MnC5H4COFe(CO)(PPh3)C5H5.Translated from Izvestiya Akademii Nauk SSSR, Seriya Khimicheskaya, No. 12, pp. 2813–2815, December, 1977.  相似文献   

17.
The complexes of the type [ReH(CO)5–n(PMe3)n] (n = 4, 3) were reacted with aldehydes, CO2, and RC?CCOOMe (R = H, Me) to establish a phosphine-substitutional effect on the reactivity of the Re–H bond. In the series 1–3 , benzaldehyde showed conversion with only 3 to afford a (benzyloxy)carbonyltetrakis(trimethylphosphine)rhenium complex 4 . Pyridine-2-carbaldehyde allowed reaction with all hydrides 1–3 . With 1 and 2 , the same dicarbonyl[(pyridin-2-yl)methoxy-O, N]bis(trimethylphosphine)rhenium 5b was formed with the intermediacy of a [(pyridin-2-yl)methoxy-O]-ligated species and extrusion of CO or PMe3, respectively. The analogous conversion of 3 afforded the carbonyl[(pyridin-2-yl)methoxy-O,N]tris(trimethylphosphine)rhenium ( 1 ) 7b . While 1 did not react with CO2, 2 and 3 yielded under relatively mild conditions the formato-ligated [Re(HCO2)(CO)(L)(PMe3)3] species ( 8 (L = CO) and 9 (L = PMe3)). Methyl propiolate and methyl butynoate were transformed, in the presence of 1 , to [Re{C(CO2Me)?CHR}(CO)3(PMe3)2] systems ( 10a (R = H), and 10b (R = Me)), with prevailing α-metallation and trans-insertion stereochemistry. Similarly, HC≡CCO2Me afforded with 2 and 3 , the α-metallation products [Re{C(CO2Me)?CH2}(CO)(L)(PMe3)3] 11 (L = CO) and 12 (L = PMe3). The methyl butyonate insertion into 2 resulted in formation of a mixture of the (Z)- and (E)-isomers of [Re{C(CO2Me)?CHMe} (CO)2(PMe3)3] ( 13a , b ). In the case of the conversion of 3 with MeC?CCO2Me, a Re–H cis-addition product [Re{(E)-C(CO2Me)?CHMe}(CO)(PMe3)4] ( 14 ) was selectively obtained. Complex 11 was characterized by an X-ray crystal-structure analysis.  相似文献   

18.
The reaction of Ru3(CO)12 with tetramethyltrifluoromethylcyclopentadiene at various ratios of the reagents was studied. Refluxing of Ru3(CO)12 with a sixfold excess of tetramethyltrifluoromethylcyclopentadiene in octane in an inert atmosphere gave a complex, which is, according to X-ray diffraction data, a dimer,trans-[Ru(η5-C5Me4CF3)(CO)2]2. The reaction under the same conditions but starting from Ru3(CO)12 and C5Me4CF3H in 2∶1 molar ratio gave a hexaruthenium cluster [Ru63-H)(η24-CO)2(μ-CO)(Co)125-C5Me4CF2)], which was characterized by IR as well as1H,13C, and19F NMR spectroscopy. According to X-ray diffraction data, an Ru4 tetrahedron, in which two edges are bound by additional “briding” Ru atoms, constitutes the frame of this compound. This complex has one (η5-C5Me4CF3) ligand, as well as one (μ3-H) and two (η24-CO) groups. Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 3, pp. 507–512, March, 1998.  相似文献   

19.
Mono- and Binuclear Dinitrosyl Complexes of Molybdenum and Tungsten. Crystal Structures of (PPh3Me)2[WCl4(NO)2], (PPh3Me)2[MoCl3(NO)2]2, and (PPh3Me)2[WCl3(NO)2]2 The complexes (PPh3Me)2[MCl4(NO)2] (M = Mo, W), and (PPh3Me)2[MCl3(NO)2]2, respectively, are prepared by reactions of the polymeric compounds MCl2(NO)2 with triphenylmethylphosphonium chloride in CH2Cl2, forming green crystals. According to the IR spectra the nitrosyl groups are in cis-position in all cases. The tungsten compounds as well as (PPh3Me)2[MoCl3(NO)2]2 were characterized by structure determinations with X-ray methods. (PPh3Me)2[WCl4(NO)2]: space group C2/c, Z = 4. a = 1874, b = 1046, c = 2263 pm, β = 119.99°. Structure determination with 3492 independent reflexions, R = 0.057. The compound consists of PPh3Me ions, and anions [WCl4(NO)2]2? with the nitrosyl groups in cis-position (symmetry C2v). (PPh3Me)2[WCl3(NO)2]2: Space group C2/c, Z = 4. Structure determination with 2947 independent reflexions, R = 0.059. (PPH3Me)2[MoCl3(NO)2]2: Space group P1 , Z = 1. a = 989, b = 1134, c = 1186 pm; α = 63.25°, β = 80.69°, γ = 69.94°. Structure determination with 3326 independent reflexions, R = 0.046. The compounds consist of PPh3Me ions, and centrosymmetric anions [MCl3(NO)2]22?, in which the metal atoms are associated via MCl2M bridges of slightly different lengths. One of the NO groups is in an axial position, the other one in equatorial position (symmetry C2h).  相似文献   

20.
The reaction between Fe(CO)5, and group V donor ligands L, (L  PPh3, AsPh3, SbPh3, PMePh2, PMe2Ph, Asme2Ph, P(C6H11)3, P(n-Bu)3, P(i-Bu)3, P(OPh)3, P(OEt)3, P(OMe)3) in the presence of [(η5-C5Me5Fe(CO)2]2 (R  H, Me) or [(η5-C5Me5)Fe(CO)2]2 as catalyst in refluxing toluene, rapidly gives the complexes Fe(CO)4L in yields > 85%. The reaction rate is essentially independent of the nature of L for [(η5-C5Me5)Fe(CO)2]2 as catalyst. For the other catalysts, the rate is influenced predominantly by the steric properties of L. These results are interpreted in terms of the interaction between the catalyst and the ligand L to give derivatives of the type (η5-C5H4R)2Fe2,(CO)3,(L). These derivatives were also found to catalyse the reaction between Fe(CO)5, and L. The complexes [(η-C5H4R)Fe(CO)2]2 (R  H, Me) and [(η5-C5Me5)Fe(CO)2]2 also catalyse the reaction between Mn2(CO)10 and PPh3 to give Mn2(CO)8- PPh3)2 in > 80% yield.  相似文献   

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