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1.
Transition Metal Phosphido Complexes. XIII. P-functional Phosphido-Bridged Heterobimetallic Complexes with and without a Metal-Metal Bond; P(SiMe3)2-Bridged cp(CO)xFe Derivatives cp(CO)2FeP(SiMe3)2 1 reacts with the carbonyl nitrosyl complexes Co(CO)3(NO), Fe(CO)2(NO)2,Mn(CO)(NO)3 substituting a CO ligand and with the THF complexes M′(CO)5THF(M′ = Cr, Mo, W), Mncp(CO)2THF MnMecp(CO)2 which can be obtained in solution substituting the THF ligand to give the phosphido-bridged bimetallic complexes cp(CO)2Fe[μ-P(SiMe3)2]M′Lm 2 (M′Lm = Co(CO)2(NO) b , Fe(CO)(NO)2 c , Mn(NO)3 d , Cr(CO)5 f , Mo(CO)5 g , W(CO)5 h , Mncp(CO)2 i , MnMecp(CO)2 j ). Solutions of Li(Me3Si)2PM′Lm 4e–l (M′Lm = Fe(CO)4 e , Crcp(CO)(NO) k , Vcp(CO)3 l ) are available by a selective cleavage reaction of a Si? P bond in the complexes (Me3Si)3PM′Lm 3e–l using n-BuLi. Reactions of cp(CO)2FeBr with 4e–l give the bimetallic complexes 2e–l . The open-chain complexes 2c, 2f, 2h–k undergo a photochemical decarbonylation reaction to form the phosphido-bridged bimetallic complexes cp(CO)Fe[μ-CO, μ-P(SiMe3)2]M′Lm?1(Fe-M′) 5 (M′Lm?1 = Fe(NO)2 c , Cr(CO)4 f , W(CO)4 h , Mncp(CO) i , MnMecp(CO) j , Crcp(NO) k ) containing a metal-metal bond. Equilibria between various isomers can partially be observed in solutions of the complexes 5. I.R., N.M.R., and mass spectral data are reported.  相似文献   

2.
Transition Metal Phosphido Complexes. XVI. Structures of two Open-Chain, PH2-Bridged Bimetallic Complexes cp(CO)2Fe(μ-PH2)MLn (MLn = Fe(CO)4, MnMecp(CO)2) cp(CO)2Fe(μ-PH2)Fe(CO)4 1 crystallizes monoclinic in the space group P21/c with a = 733.6 pm, b = 1089.8 pm, c = 1761.6 pm, β = 99.65°, and Z = 4 formula units. The bond distances of the bridging phosphorus atom to the two iron units Fe(1)(CO)4 and cp(CO)2Fe(2) differ with 229.0 pm (P? Fe(1)) and 226.5 pm (P? Fe(2)), respectively, only slightly. The angle Fe(1)? P? Fe(2) is with 124.8° surprisingly large for four-coordinate phosphorus. The coordination at Fe(1) is trigonal bipyramidal with axial phosphorus. The ligand sphere at Fe(2) corresponds to the so-called “piano stool” arrangement. cp(CO)2Fe(μ-PH2)MnMecp(CO)2 2 crystallizes monoclinic in the space group P21 with a = 750.1 pm, b = 2234.5 pm, c = 974.1 pm, β = 106.23°, and Z = 4 formula units. The P? Fe bond distance is found to be 230.0 pm, the P? Mn bond distance 224.3 pm. The angle Fe? P? Mn is with 126.8° even somewhat larger than the corresponding angle in 1 . Including the bridging PH2-group both transition metals of 2 achieve a kind of “piano stool” arrangement for their ligand sphere.  相似文献   

3.
Alternative Ligands. XXVI. M(CO)4 L-Complexes (M ? Cr, Mo, W) of the Chelating Ligands Me2ESiMe2(CH2)2E′ Me2 (Me ? CH3; E ? P, As; E′ ? N, P, As) The reaction of M(CO)4NBD (NBD = norbornadiene; M ? Cr, Mo, W) with the ligands Me2ESiMe2(CH2)2E′ Me2 yields the chelate complexes (CO)4M[Me2ESiMe2]) for E,E′ ? P, As, but not for E and /or E′ ? N. The NSi group is not suited for coordination because of strong (p-d)π-interaction. In the case of the ligands with E ? P or As and E′ ? N chelate complexes can be detected in the reaction mixture, but isolable products are complexes with two ligands coordinated via the E donor group. The new compounds are characterized by analytical and spectroscopic (IR, NMR, MS) investigations. The spectroscopic data are also used to deduce the coordinating properties of the ligands. X-ray diffraction studies of the molybdenum complexes (CO)4Mo[Me2ESiMe2(CH2)2AsMe 2] (E ? P, As) in accord with the observed coordination effects show only small differences between SiE and CE donor functions. Attempts to use the ligands Me2ESiMe2(CH2)2AsMe2 (E ? P, As) for the preparation of Fe(CO)3L complexes result in the fission of the SiE bonds and the formation of the binuclear systems Fe2(CO)6(EMe2)2 (E ? P, As) together with the disilane derivative [Me2Si(CH2)2AsMe2]2.  相似文献   

4.
Cyanide Bridged Trinuclear Complexes with Central M(Cyclam) Units Reactions between metal cyclam complexes M(Cyclam)Xn and organometallic cyanides LnM′‐CN yielded trinuclear complexes LnM′‐CN‐M(Cyclam)‐NC‐M′Ln with M = Mn, Fe, Co, Ni and M′ = Cr, Fe, Ru. They were probed with structural, spectroscopic and electrochemical methods for electronic interactions between the involved metal centers.  相似文献   

5.
Addition of Cationic Lewis Acids [M′Ln]+ (M′Ln = Fe(CO)2Cp, Fe(CO)(PPh3)Cp, Ru(PPh3)2Cp, Re(CO)5, Pt(PPh3)2, W(CO)3Cp to the Anionic Thiocarbonyl Complexes [HB(pz)3(OC)2M(CS)] (M = Mo, W; pz = 3,5‐dimethylpyrazol‐1‐yl) Adducts from Organometallic Lewis Acids [Fe(CO)2Cp]+, [Fe(CO)(PPh3)Cp]+, [Ru(PPh3)2Cp]+, [Re(CO)5]+, [ Pt(PPh3)2]+, [W(CO)3Cp]+ and the anionic thiocarbonyl complexes [HB(pz)3(OC)2M(CS)] (M = Mo, W) have been prepared. Their spectroscopic data indicate that the addition of the cations occurs at the sulphur atom to give end‐to‐end thiocarbonyl bridged complexes [HB(pz)3(OC)2MCSM′Ln].  相似文献   

6.
The reactions of mononuclear carbene complexes of W and Fe of the type CO)mMC(OR)(CH2nCHCR′″ (M  = FE, W; m = 4 and 5; n = 0, 2, 3; R′, R″ = C, CH3, OEt) with Fe(CO)5 have been studied. In all cases the reaction leads to new hetero (WFe) or homo (FeFe) μ-alkylidene complexes, the position of the double bond depending strongly on n.  相似文献   

7.
8.
Metal Complexes with Anionic Ligands of Elements of the Main Group IV. VII(1) Substitution Reactions of Carbonylnitrosyl and Nitrosyltrifluorophosphine Transition Metal Complexes with Trichlorostannid L-substitution by [SnCl3]? occurs if the nitrosyl complexes Co(NO)L3 and Fe(NO)2L2 (L = CO or PF3) are reacted with [N(C2H5)4][SnCl3] thermically in tetrahydrofuran as well as photochemically induced in methylenechloride. The complexes Co(NO)L3 yield the mono-substitution products [N(C2H5)4][Co(NO)L2SnCl3], with the iron compounds Fe(NO)2L2 only the disubstituted derivative [N(C2H5)4]2[Fe(NO)2(SnCl3)2] can be isolated. On the other hand CO substitution at (π-C5H5)Mo(NO)(CO)2 by UV irradiation did not suceed both with [SnCl3]? and with PF3. From the IR-spectroscopic data a leastly with PCl3 comparable π-acceptor ability is derived for the trichlorostannido ligand.  相似文献   

9.
Treatment of transition-metal—ammonia complexes with ketones yields complexes with RR′CNH ligands. Of particular interest is the stabilization of dialkylketimines such as e.g. (CH3)2CNH and C6H10NH in [M(CO)5{NHC(CH3)2}] or [M(CO)5 {NHC6H10}] (M = Cr, Mo, W). The principle of synthesis may be applied to a wide range of different metals and types of complexes, as can be shown by the synthesis of [C5H5Mn(CO)2 {NHC(CH3)2}], [C5H5Fe(CO)2{NHC(CH3)2}]PF6, [M(CO)4L2] (M = Cr, Mo, W; L = (CH3)2CNH, C6H10NH) and [W(CO)3(diphos){NHC(CH3)}2]. Treatment of [Cr(CO)5NH3] with urotropine gives [Cr(CO)5 {N4(CH2)6}] which is also obtained from [Cr(CO)5THF] and urotropine. The methods of preparation, reactions and spectroscopic properties of the complexes are reported.  相似文献   

10.
The reactions of Fe(CO)5 or Fe3(CO)12 with NaBEt3H or KB[CH(CH3)C2H5]3H, respectively and treatment of the resulting carbonylates M2Fe(CO)4, M = Na, K with elemental selenium in appropriate ratios lead to the formation of M2[Fe2(CO)6(μ‐Se)2]. Subsequent reactions with organo halides or the complex fragment cpFe(CO)2+, cp = η5‐C5H5 afforded the selenolato complexes [Fe2(CO)6(μ‐SeR)2], R = CH2SiMe3 ( 1 ), CH2Ph ( 2 ), p‐CH2C6H4NO2 ( 3 ), o‐CH2C6H4CH2 ( 4 ) and cpFe(CO)2+ ( 5 ) in moderate to good yields. A similar reaction employing Ru3(CO)12, Se and p‐O2NC6H4CH2Br leads to the formation of the corresponding organic diselenide. The X‐ray structures of 1 , 3 , 4 and 5 were determined and revealed butterfly structures of the Fe2Se2 cores. The substituents in 1 , 3  and 5 adopt different conformations depending on their steric demand. In 4 , the conformation is fixed because of the chelate effect of the ligand. The Fe–Se bond lengths lie in the range 235 to 240 pm, with corresponding Fe–Fe bond lengths of 254 to 256 pm. The 77Se NMR data of the new complexes are discussed and compared with the corresponding data of related complexes.  相似文献   

11.
Co-ordinative Properties of Chelating Ligands of the Type Me2XSi(Me2)CH2XMe2 (X ? N and/or P; Me ? CH3) The reactions of the ligands L ? Me2XSi(Me2)CH2XMe2 (X ? N and/or P; Me ? CH3) with M(CO)6 and M(CO)4norbor (norbor ? norbornadiene) (M ? Cr, Mo), respectively, yield derivatives of the types M(CO)5L, M(CO)4L, and M(CO)4L2, respectively. M(CO)5L compounds are formed from the hexacarbonyls with Me2NSiMe2CH2PMe2, whereas the ligand Me2NSiMe2CH2NMe2 does not afford analogous derivatives under the same conditions. Even on substitution of the diene-ligand in M(CO)4norbor by Me2NSiMe2CH2PMe2 the chelate complexes M(CO)4NMe2SiMe2CH2PMe2 are not obtained, but the cis-disubstituted products M(CO)4[PMe2CH2SiMe2NMe2]2 with phosphorus acting as donor atom are produced. The ligands Me2PSiMe2CH2XMe2(X ? N, P) give the chelate complexes M(CO)4PMe2SiMe2CH2XMe2 in high yields. The new compounds were identified by analytical and spectroscopic (PMR, IR, mass spectra) methods.  相似文献   

12.
The chemistry of [Re(CO)(NO)L2] fragments (L ? phosphorus donor) was explored. Starting from [Re(CO)5Cl] the synthesis of [Re2Cl2(μ-Cl)2(CO)4(NO)2] ( 1 ) was accomplished via the preparation of [Et4N]2[Re2Cl2(μ-Cl)2(CO)6] and nitrosylation of this compound with [NO][BF4]. Complex 1 was converted to [RecL2(CO)(NO)L2] complexes 2 ( a L = (MeO)3P; b L = (EtO)3P; c L = (i-PrO)3P; d L ? Me3P; e L ? Et3P; f L ? Cy3P) by heating with L in MeCN. In the case of the reaction of L = (MeO)3P, a trisubstitued compound mer-{ReCl2(NO)[P(OMe)3]3} 3 was also obtained. Replacement of the Cl ligands in 2a–e with Me groups was achieved by reacting them with MeLi in Et2O yielding cis, trans-[Re(CO)(NO)Me2L2]complexes 4a–e . Reaction of 2a–e with Li[BHEt3] led to substitution of one Cl by an H ligand with formation of [ReCl(CO)H(NO)L2] compounds 5a–;e , displaying trans-H,NO geometries. The hydride-transfer agent Na[AlH2(OCH2CH2OCH3)2] transformed 2 into the cis-dihydride systems [Re(CO)H2(NO)L2] 6a–f . Reductive carbonylation of 2a–d in the presence of Na/Hg and CO gave pentacoordinate [Re(CO)2(NO)L2] complexes 7b–d , and under comparable conditions the Cl substituents of 2b–f were replaced by tolane using Mg or t-BuLi giving trigonal bipyramidal [Re(CO)(NO)L2(PhC?CPh)] compounds 8b–f . Complexes 5c , 6a , and 8d were characterized by X-ray crystal-structure analysis.  相似文献   

13.
Electrochemical investigations of the reduction of dicationic, monocationic and neutral dinitrosyl molybdenum complexes in nitromethane and acetonitrile are reported. All the compounds with the general formulae: [Mo(NO)2L2L′2]2+, [Mo(NO)2L2L′Cl]+ and Mo(NO)2L2Cl2 (L = CH3CN, CH2CHCN, C6H5CN, C5H5N, P(C6H5)3, L2 = 2,2′-bipyridine, L′ = CH3CN and L′2 = 2,2′-bipyridine) are reducible by one electron to yield 19-electron complexes. The dicationic complexes undergo a reversible one-electron transfer. For the mono- and dichlorocomplexes, the one-electron transfer induces the facile exchange of the chloroligand in the 19-electron complexes except for L2 = 2,2′-bipyridine. However, the exchange of the chloroligand is followed by the fast anation by Cl? of the remaining 18-electron chlorocomplexes to afford [Mo(NO)2Cl3L]? and [Mo(NO)2Cl4]2? which are reducible at higher negative potentials than dichloro- and monochlorocomplexes. The multiple electrochemical step system is not catalytic, but of the electroactivation type.  相似文献   

14.
Abstract

The coordinating properties of dipod and tripod phosphorus ligands LI = R2M′ (OCH2PMe2) n(CH2CH2PMe2) 2-n and LII = RM′ (OCH2PMe2)n(CH2CH2PMe2)3-n (M′ = Si, Ge) with separated donor and acceptor centres have been investigated using electron rich metal complex fragments, e. g. M(CO)m, (M = Cr, MO, W), π-C5H5Co, RhCl(CO) or Ni(CO), as bonding partners.  相似文献   

15.
Abstract

Alkylen-bis-phosphine H2P-(CH2)nPH2 (n=2, 3, 4) lassen sich unter geeigneten Bedingungen zu H(M)P-(CH2 n- PH2 und H(M)P-(CH2)n-P(M)H metallieren und nach Umsatz mit Alkylhalogeniden in die entsprechenden Phosphine HRP-(CH2)n-PH2 sowie HRP-(CH2)n-PRH überführen. Letztere sowie deren Alkaliphosphide sind Ausgangabasis für die Synthese von P-E-P-Heterocyclen (E=Mg, C, Si, Ge) mit 5, 6 und 7-Ringstruktur. Der Reaktionsverlauf zwischen BuLiP-(CH2)3-PLiBu und CH2C12 wird diskutiert. Die Struktur der dargestellten Verbindungen wird NMR- und massenspektrokopisch gesichert.

The metallation of alkylen-bis-phosphines H2P-(CH2)nPH2 (n=2, 3, 4) under suitable conditions leads to H(M)P-(CH2)n-PH2 and H(M)P-(CH2)n-P(M)H which reacts with alkylhalides forming the corresponding phosphines. The latter and their alkaliphosphides, respectively, are suitable materials to prepare P-E-P-heterocycles (E=Mg, C, Si, Ge) of 5, 6 and 7-ring structure. The structure of the synthesized compounds is elucidated by investigation of their mass and 31P-nmr-spectra.  相似文献   

16.
Novel η1-vinyl complexes of the type Cp(CO)(L)FeC(OMe)C(R)R′ (R = R′ = H, Me; R = H, R′ = Me; L = Me3P, Ph3P) are obtainied via methylation of the acyl complexes Cp(CO)(L)FeC(O)R (R = Me, Et, i-Pr) with MeOSO2F and subsequent deprotonation of the resulting carbene complexes [Cp(CO)(L)FeC(OMe)R]SO3F with the phosphorus ylide Me3PCH2. The same procedure can be applied for the synthesis of the pentamethylcyclopentadienyl derivative C5Me5(CO)(Me3P)FeC(OMe)CH2, while treatment of the hydroxy or siloxy carbene complexes [Cp(CO)(L)FeC(OR)Me]X (R = H, Me3Si; X = SO3CF3) with Me3CH2 results in the transfer of the oxygen bound electrophile to the ylidic carbon. Some remarkable spectroscopic properties of the new complexes are reported.  相似文献   

17.
Reactions of Nitrosyl Complexes. XIII. Synthesis of Novel Di- and Trinuclear Heterobimetallic Complexes with Bridging NO Ligands By reaction of [{Cp′Fe(μ-NO)}2] with [Cp′Mn(CO)2 · (THF)] (Cp′ = μ5-C5H4Me) in THF [Cp3′Fe2Mn(μ-CO)2(μ-NO) · (μ3-NO)] 1 is formed in high yield. The reaction of [{Cp′Fe(μ-NO)}2]Na with [Cp′Mn(CO)2NO]BF4 in DME/acetone yields besides known [{Cp′Mn(CO)(NO)}2] 2 the novel complex [Cp2′FeMn(μ-NO)2NO] 3 . By interaction between [Cp′Mn(CO)2(THF)] and 3 , [Cp3′FeMn2(μ-CO)(μ-NO)2 · (μ3-NO)] 4 is formed. The complex 4 represents the hitherto unknown missing link in the series of the isoelectronic clusters [Cp3′Mn3(μ-NO)33-NO)], 1 , and [Cp3′Fe3(μ-CO)33-NO)]. Attempts to synthesize the unknown complex [(Cp′FeNO)2 · Cr(CO)5] by addition of carbene analogous Cr(CO)5 fragments to the Fe=Fe bond in [{Cp′Fe(μ-NO)}2] only led to very low yields of [Cp2′FeCr(CO)5] 5 . The new complexes were characterized by mass, NMR and IR spectra.  相似文献   

18.
Heteronuclear Coordination Compounds with Metal—Metal Bonds. VIII. New Heterodinuclear Complexes with Bonds between Copper(I) and Manganese(?I), Iron(?I), or Cobalt(?I) [(en)Cu? Mn(CO)5] ( 1a ), [(dien)Cu? Mn(CO)5] ( 1b ), [(en)Cu? Fe(CO)3(NO)] ( 2a ), [(dien)Cu? Fe(CO)3(NO)] ( 2b ), [(en)Cu? Co(CO)4] ( 3a ), and [(dien)Cu? Co(CO)4] ( 3b ) are new heterobinuclear metal—metal bonded complexes. The geometry of the [Mn(CO)5]?, [Fe(CO)3(NO)]?, and [Co(CO)4]? ions is distorted only to a less extend in accord with a heteropolar bond to copper.  相似文献   

19.
The preparation of π-cyclopentadienyl(substituted cyclobutadiene)cobalt complexes by the reaction of π-C5H5Co(PPh3)(RCCR′) (R, R′ = Ph, CO2CH3 with ethynyl complexes R″CCM (R″ = Ph for M = π-C5H5Fe(CO)(L);R″ = Ph, Co2CH3 for M = π-C5H5Ni(PPh3)) is described.  相似文献   

20.
The binuclear nitrosylhalides of iron and cobalt react with cyanide to anionic complexes [M(NO)2(CN)2]? (M = Fe, Co). Substituted monomeric compounds M(NO)2LBr and Ni(NO)L2Br lead primarily under replacement of bromide to nonionic complexes M(NO)2LCN and Ni(NO)L2CN. In general these complexes react with more cyanide yielding anions [M(NO)2(CN)2]?, [Ni(NO)L(CN)2]? and [Ni(NO)(CN)3]2?. The paramagnetic dinitrosyliron compounds can be reduced to diamagnetic complexes by Na/Hg. A disproportion reaction of Co(NO)2P(C6H5)3CN forms a salt [Co(NO)2 · (P(C6H5)3)2][Co(NO)2(CN)2], a similar salt can be made by the reaction of Na[Co(NO)2(CN)2] with [Co(NO)2(NHP(C6H5)32]Br. The IR spectra are discussed.  相似文献   

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