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1.
[Co(R-η-C3H4)(η-C5H5)I] is a good precursor for the preparation of some new cationic complexes as the iodide can easily be replaced; thus addition of PEt3 to the iodo-complex (R  H) gives [Co(η-C3H5)(η-C5H5)(PEt3)]+. The reactions of [Co(R-η-C3H4)(η-C5H5))I] (R  H or 2-Me) with AgBF4 give solutions containing the coordinatively unsaturated species [Co(R-η-C3H4)(η-C5H5)+. The presence of traces of water leads to the formation of [Co(R-ηC3H4)-(η-C5H5)(H2O)]+. The addition of monodentate ligands L  PEt3 PPh3, AsPh3, SbPh3, CNCH3 and bidentate ligands LL  Ph2PCH2CH2PPh2(dppe) and o-C6H4(AsMe2)2(diars), gives, respectively mononuclear [Co(2-Me-ηC3H4)-(η-C5H5)L]+ and binuclear ligand-bridged [(2-Me-ηC3H4)(η-C5H5)CoLLCo(2-Me-ηC3H4)(η-C5H5))]2+ complexes. Crystals of [Co(2-Me-ηC3H4)(η-C5H5)-(H2O)]+[BF4]- are monoclinic, space group P21/c, with a 7.858(3), b 10.262(4), c 15.078(4) Å, β 98.36(1)°. The molecular structure contains the cobalt atom bonded to planar 2-Me-allyl and cyclopentadienyl substituents, which are almost parallel with the H2O molecule in a staggered conformation with respect to the 2-Me group.  相似文献   

2.
The reactions of tetraphenylbismuthonium and -stibonium salts Ph4EX (E = Bi, Sb; X = I, OSO2 (C6H3(CH3)2-2,5), OSO2C6H3(OH-4)(COOH-3)) with bismuth triiodide in acetone afford complexes [Ph4Bi]+[PhBi(C5H5N)I3]-, [(Ph4BiO)2S(O){2,5-(CH3)2C6H3S(O)} [Ph2Bi2I6]2–, [Ph4Sb [Bi4I16]4-·2(CH3)2C=O, and [Ph4Sb] 3+ + [Bi5I18]3-, whose structural units, according to the X-ray diffraction data, are tetraphenylbismuthonium (-stibonium) cations and mono-, di-, tetra-, and pentanuclear anions, respectively.  相似文献   

3.
Reaction of alkali metal halides (MX) with methylenediphosphine oxides and various related compounds in nonaqueous solutions leads to the formation of complex compounds. The compositions, properties, and stabilities of these compounds, which have been studied in detail in acetonitrile, are determined by the nature of the cations and anions of the alkali metal halides. Formation of neutral complexes with the composition [MX · L] and cationic complexes with the composition [ML]+ has been established. The most characteristic representative of complexes of the first type is [NaI · L]; in the complexes studied, L=R2P(O)CH2P(O)R2 (R=Bu, BuO, or Ph), Ph2P(O)CH2P(O) (OC2H5)CH2P(O)Ph2 and (p-OCH3C6H4)2P(O)CH2P(O)(C6H4CF3-p)2. Compound [LiL]+ is characteristic of complexes of the second type; the compounds containing Ph3P(O), Ph2P(O)CH2P(O)Ph2, and Ph2P(O)CH2P(O)(OC2H5)CH2P(O)Ph2 as ligands have been studied. Stability constants of the complexes [NaI · L] and [LiL]+ have been determined by measuring the dependence of the electrical conductivity of solutions of the alkali metal halides in acetonitrile on the concentration of the ligands. The complex-forming power of phosphine oxides increases with increase in the number of P=O groups. Stabilities of the complexes [NaI · L] with ligands with identical structure decrease with increase in the electronegativity of the substituents on the phosphorus atoms.  相似文献   

4.
The air stable yellow-orange complexes of cyclobutadieneiron dicarbonyl nitrosyl hexafluorophosphate, [R4C4Fe(CO)2NO]+PF-6; R = H, CH3, Ph, were prepared by the reaction of R4C4Fe(CO)3 and nitrosonium hexafluorophosphate. These complexes undergo facile monocarbonyl substitution reactions with various Lewis bases (L) to afford products of the type [R4C4Fe(CO)(NO)L]+PF-6, R = H, L = Ph3P, Ph3As, Ph3Sb or R = Ph; L = Ph3P, Ph3As; a dicarbonyl substitution product of the type [R4C4Fe(NO)L2]+PF-6, R = Ph; L = (PhO)3P, was also isolated and characterized.  相似文献   

5.
The reactions of [Co(η-C5H5)(L)I2] with Na[S2CNR2] (R = alkyl or phenyl) give [Co(η-C5H5)(I)(S2CNR2)] (I) when L = CO and [Co(η-C5H5)(L)(S2CNR2)]I (II) when L is a tertiary phosphine, phosphite or stibine, or organo-isocyanide ligand. In similar reactions [Co(η-C5H5)(CO)(C3F7)I] gives [Co(η-C5H5)(C3F7)(S2CNMe2)] and [Mn(η-MeC5H4)(CO)2(NO)]PF6 forms [Mn(η-MeC5H4)(NO)(S2CNR2)]. The iodide ligands in I may be displaced by L, to give II, or by other ligands such as [CN]?, [NCS]?, H2O or pyridine whilst SnCl2 converts it to SnCl2I. The iodide counter-anion in II may be replaced by others to give [BPh4]?, [Co(CO)4]? or [NO3]? salts. However [CN]? acts differently and displaces (PhO)3P from [Co(η-C5H5){P(OPh)3}(S2CNMe)]I to give [Co(η-C5H5)(CN)(S2CNMe2)] which may be alkylated reversibly by MeI and irreversibly by MeSO3F to [Co(η-C5H5)(CNMe)(S2CNMe2)]+ salts. Conductivity measurements suggest that solutions of I in donor solvents are partially ionized with the formation of [Co(η-C5H5)(solvent)(S2CNR2)]+ I? species. The IR and 1H NMR spectra of the various complexes are reported. They are consistent with pseudo-octahedral “pianostool” molecular structures in which the bidentate dithiocarbamate ligands are coordinated to the metal atoms through both sulphur atoms.  相似文献   

6.
The complexes [Rh(η3-C3H4R)(η5-C5R′5)L]+BF4- (R  1-Me, R′  H, Me; R  2-Me, R′  H) (L  C5H5N, Ph3P, Ph3As) have been prepared from Rh(η3-C3H4R)(η5-C5R′5)Cl and AGBF4 in acetone, followed by reaction with the stoicheiometric quantity of L. The 1H and 13C NMR spectra of the salts are reported and discussed.  相似文献   

7.
The diphenylacetylene-cobalt complex, η5-C5H5Co(PPh3)(PhCCph) (I) reacted with alkyl diazoacetates (II, alkyl = methyl, ethyl, and t-butyl) at room temperature to give two isomers of the mononuclear cobalt complex, η5-C5H5Co- (PhC2Ph)(CHCO2R)2 (III and IV) and two isomers of the dinuclear cobalt complex [η5-C5H5Co(PhC2Ph)(CHCO2R)]2 (V and VI).The complexes III and IV are diene complexes, syn,syn- and syn,anti- (dialkyl 2,3-diphenylmuconate)-η5-cyclopentadienylcobalt, respectively. The structure of Vb (R = C2H5) was determined by X-ray diffraction as η-[1–3-η3 : 1,4,5-μ3- 1,6-bis(ethoxycarbonyl)-2,3,4,5-tetraphenylhexa-2,4-diene-1,1-diyl]bis(η5-cyclopentadienylcobalt)(CoCo. The complex VI is the bis(η3-allyl)cobalt complex, μ-[1–3-η3 : 4–6η3-1,6-anti,anti-bis(alkoxycarbonyl)-2,3,4,5,-tetraphenylhexa- 1,3,5-triene]bis(η5-cyclopentadienylcobalt)(CoCo) according to its 1H NMR spectrum.The formation of these products was rationalizes in terms of a cobaltacyclobutene intermediate.  相似文献   

8.
The complexes [Ph3PMe] 2 + [BiI5]2? (I) and [Ph3PMe] 2 + [BiI5 · C 5H5N]2? · C 5H5N (II) were synthesized by the reaction of bismuth triiodide with triphenylmethylphosphonium iodide, and their structures were determined by X-ray diffraction analysis. The P atom in cation I has slightly distorted tetragonal coordination polyhedron (the CPC angles 109.42(4)° and 109.52(4)°, the bond lengths P-CPh 1.779(2), P-CMe 1.793(1) Å. The Bi atom in the anion of complex I has an ideal trigonal-bipyramidal coordination polyhedron (Bi-Ieq 3.0031(4), Bi-Ieq 3.0485(5) Å). The crystal of complex II consists of the anions [BiI5 · C 5H5N]2?, solvated pyridine molecules, and two types of crystallographically independent tetrahedral triphenylmethylphosphonium cations (the angles CPC 106.9(1)°–111.7(1)°, the distances P-CPh 1.785(3)–1.792(3), P-CMe 1.793(3), 1.786(3) Å). The Bi atoms in the anion of complex II have a distorted octahedral coordination polyhedron (Bi-I 3.0878(4)–3.1240(3), Bi-N(1) 2.628(3) Å).  相似文献   

9.
Bis(cyclopentadienyl)methane-bridged Dinuclear Complexes, V[1]. – Heteronuclear Co/Rh-, Co/Ir-, Rh/Ir-, and Ti/Ir Complexes with the Bis(cyclopentadienyl)methane Dianion as Bridging Ligand* The lithium and sodium salts of the [C5H5CH2C5H4]- anion, 1 and 2 , react with [Co(CO)4I], [Rh(CO)2Cl]2, and [Ir(CO)3Cl]n to give predominantly the mononuclear complexes [(C5H5-CH2C5H4)M(CO)2] ( 3, 5, 7 ) together with small amounts of the dinuclear compounds [CH2(C5H4)2][M(CO)2]2 ( 4, 6, 8 ). The 1H- and 13C-NMR spectra of 3, 5 , and 7 prove that the CH2C5H5 substituent is linked to the π-bonded ring in two isomeric forms. Metalation of 5 and 7 with nBuLi affords the lithiated derivatives 9 and 10 from which on reaction with [Co(CO)4I], [Rh(CO)2Cl]2, and [C5H5TiCl3] the heteronuclear complexes [CH2(C5H4)2][M(CO)2][M′(CO)2] ( 11–13 ) and [CH2(C5H4)2]-[Ir(CO)2][C5H5TiCl2] ( 17 ) are obtained. Photolysis of 11 and 12 leads almost quantitatively to the formation of the CO-bridged compounds [CH2(C5H4)2][M(CO)(μ-CO)M′(CO)] ( 14, 15 ). According to an X-ray crystal structure analysis the Co/Rh complex 14 is isostructural to [CH2(C5H4)2][Rh2(CO)2(μ-CO)] ( 16 ).  相似文献   

10.
The redox aptitude of a series of cobalt(III) or cobalt(I) sandwich complexes bearing a charge compensated dicarbollide ligand ([9-L-7,8-C2B9H10]) as a constant unit and different counterparts (varying from classical [7,8-C2B9H11]2− to charge-compensated [9-L-7,8-C2B9H10] dicarbollides, from cyclopentadienyl [C5R5] (R = Me, H) to cyclobutadiene [C4Me4]0 ligands) has been studied. All the Co(III) complexes display the reversible sequence Co(III)/Co(II)/Co(I). In contrast, the Co(I) complexes (namely, those capped by tetramethylcyclobutadiene) accede reversibly only to the Co(II) oxidation state, the passage to Co(III) being irreversible. When possible, the Co(II) intermediates have been characterized by EPR spectroscopy. The molecular structures of the monocation [Co(η-9-SMe2-7,8-C2B9H10)2]+ in its DD/LL and meso diastereomeric forms as well as that of heteroleptic (η-7,8-C2B9H11)Co(η-9-SMe2-7,8-C2B9H10) have been obtained by single-crystal diffraction. Presented at the 3rd Chianti Electrochemistry Meetings July 3−9, 2004, Certosa di Pontignano, Italy  相似文献   

11.
The ability of transition metal catalysts to add or remove hydrogen from organic substrates by transfer hydrogenation is a valuable synthetic tool. Towards a series of novel metal complexes with a P―NH ligand, [Ph2PNHCH2―C4H3O] derived from furfurylamine were synthesized. Reaction of [Ph2PNHCH2―C4H3O] 1 with [Ru(η6p‐cymene)(μ‐Cl)Cl]2, [Ru(η6‐benzene)(μ‐Cl)Cl]2, [Rh(μ‐Cl)(cod)]2 and [Ir(η5‐C5Me5)(μ‐Cl)Cl]2 gave a range of new monodentate complexes [Ru(Ph2PNHCH2―C4H3O)(η6p‐cymene)Cl2] 2 , [Ru(Ph2PNHCH2―C4H3O)(η6‐benzene)Cl2] 3 , [Rh(Ph2PNHCH2‐C4H3O)(cod)Cl] 4 , and [Ir(Ph2PNHCH2‐C4H30)(η5‐C5Me5)Cl2] 5 , respectively. All new complexes were fully characterized by analytical and spectroscopic methods. 31P‐{1H} NMR, distortionless enhancement by polarization transfer (DEPT) or 1H‐13C heteronuclear correlation (HETCOR) experiments were used to confirm the spectral assignments. Following activation by KOH, compounds 1 , 2 , 3 , 4 catalyzed the transfer hydrogenation of acetophenone derivatives to 1‐phenylethanol derivatives in the presence of iso‐PrOH as the hydrogen source. Notably [Ru(Ph2PNHCH2‐C4H3O)(η6‐benzene)Cl2] 3 acts as an excellent catalyst, giving the corresponding alcohols in 98–99% yield in 20 min at 82°C (time of flight ≤ 297 h?1) for the transfer hydrogenation reaction in comparison to analogous rhodium or iridium complexes. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

12.
5-Cyclopentadienyl)(η5-pyrrolyl)titanium(IV) dichloride, (η5-indenyl)-(η5-pyrrolyl)titanium(IV) dichloride and (η5-cyclopentadienyl)(η5-indenyl)-titanium(IV) dichloride, when treated with 8-hydroxyquinoline (oxine) in aqueous medium form ionic derivatives of the type, [(η5-R)(η5-R′)TiL]+ Cl- (R = C5H5, C9H7, R′ = C4H4N; R = C5H5, R′ = C9H7; L is the conjugate base of (oxine). A number of halide and complex halogeno anions present in aqueous solution were isolated as salts of these ionic complexes giving derivatives of the type, [(η5-R)(η5-R′)TiL]+ X- (X = Br-, I-, ZnCl3(H2O)-, CdCl42-, HgCl3-). Conductivity measurements in nitrobenzene solution indicate that these complexes are electrolytes. Both the IR and 1H NMR spectral studies demonstrate that the ligand L is chelating. Consequently there is tetrahedral coordination about the titanium(IV) ion.  相似文献   

13.
The cyclopentadienylcobalt(I) compounds C5H5Co(PMe3)P(OR)3 (R = Me, Et, Pri) and C5H5Co(C2H4)L (L = PMe3, P(OMe)3, CO) are prepared by ligand substitution starting from C5H5Co(PMe3)2 and C5H5Co(C2H4)2. Whereas the reaction of C5H5Co(PMe3)P(OMe)3 with CH2Br2 mainly gives [C5H5CoBr(PMe3)P(OMe)3]Br, the dihalogenocobalt(III) complexes C5H5CoX2(PMe3) (X = Br, I) are obtained from C5H5Co(CO)PMe3 and CH2X2. Treatment of C5H5Co(CO)PMe3 or C5H5Co(C2H4)PMe3 with CH2ClI at low temperatures produces a mixture of C5H5CoCH2Cl(PMe3)I and C5H5CoCl(PMe3)I, which can be separated due to their different solubilities. The same reaction in the presence of ligand L gives the carbenoidcobalt(III) compounds [C5H5CoCH2Cl(PMe3)L]PF6 in nearly quantitative yields. If NEt3 is used as the Lewis base, the ylide complexes [C5H5Co(CH2PMe3)(PMe3)X]PF6 (X = Br, I) are obtained. The PF6 salts of the dications [C5H5Co(CH2PMe3)(PMe3)L]2+ (L = PMe3, P(OMe)3, CNMe) and [C5H5Co(CH2PMe3)(P(OMe)3)2]2+ are prepared either from [C5H5Co(CH2PMe3)(PMe3)X]+ and L, or more directly from C5H5Co(CO)PMe3, CH2X2 and PMe3 or P(OMe)3, respectively. The synthesis of C5H5CoCH2OMe(PMe3)I is also described.  相似文献   

14.
The reactions of the cationic complexes [CpMn(CO)2NO]+, [MeCpMn(CO)2NO]+ (Cp = η5-C5H5, MeCp = η5-C5H4CH3), [CpRe(CO)2NO]+, [CpMn(CO)(L)NO]+ (L = PPh3, PEt2Ph, AsPh3, CNMe, CNEt), {[CpMn(CO)NO]2Me2PC2H4PMe2}2+ and {CpMn(CO)NO]2Ph2PC2H4PPh2}2+ with liquid NH3 yield the neutral carbamoyl complexes CpMn(CO)(NO)CONH2, MeCpMn(CO)(NO)CONH2, CpRe(CO)(NO)CONH2, CpMn(L)(NO)CONH2 (L = PPh3, PEt2Ph, AsPh3, CNMe, CNEt), [CpMn(NO)CONH2]2Me2PC2H4PMe2 and [CpMn(NO)CONH2]2Ph2PC2H4PPh2. Properties and reactions of these new compounds are described.  相似文献   

15.
The first arenediazo derivatives of iron(?II), Fe(N2Ar)(NO)(CO)(PPh3), have been synthesised and their properties are described. A linear relationship has been found between v(CO) in these complexes and η? for the para substituent in the arenediazo aryl ring. The 57Fe Mössbauer spectra of the complexes indicate that [ArN2]+ is a stronger σ-donor and weaker π-acceptor than [NO]+. The relationship between ΔEq and σp? suggests that changes in ΔEq with aryl substitution involve both substituent-specific and substituent-independent effects. The unstable cobalt(?I) compound Co(N2C6H5)(CO)2(PPh3), the first arenediazo derivative of cobalt, is also described.  相似文献   

16.
Reactions of CH3Li, C6H5Li, and C6H5CH2MgCl with [(C5H5)Fe(CO)2Y]+-[B(C6H5)4] [Y  Co, P(C6H5)3, and CS] have been investigated. The organolithium reagents used act either as reducing agents or as nucleophilic reagents towards the cyclopentadienyliron tricarbonyl cation and its thiocarbonyl analogue. Benzyl-magnesium chloride reacts with the cyclopentadienyl ring of [(C5H5)Fe(CO)3]+ and [(C5H5)Fe(CO)2P(C6H5)3]+ producing neutral cyclopentadiene complexes.  相似文献   

17.
Reactions of N,P-Ligands as Ph2P(o-NMe2C6H4) (1L), 2,6-iPr2C6H3NHC(Ph)=NC6H4(o-PPh2) (2L), and Ph2PN(R)PPh2 (R=iPr (3L), cyclo-C6H11 (4L), tBu (5L), CH2C4H7O (6L)) each with dicobalt octacarbonyl produced complexes [1LCo(CO)3]2 ( 1 ), [2LCo(CO)(μ-CO)2Co(CO)3] ( 2 ), [3LCo(CO)3]+[Co(CO)4] ( 3 ), [3LCo(CO)2]2 ( 4 ), [4LCo(CO)2]2 ( 5 ), [5LCo(CO)2]+[Co(CO)4] ( 6 ), and [6LCo(CO)2]+[Co(CO)4] ( 7 ). Complexes 1–7 have all been structurally characterized by X-ray crystallography, IR and NMR spectroscopies, and elemental analysis. Catalytic tests on transformation of ethylene oxide (EO), CO and MeOH into methyl 3-hydroxypropionate (3-HMP) indicate that complexes 1 – 7 are active, where ion-pair complexes 3 and 6 – 7 behave more excellently (by achieving 88.4–93.6% 3-HMP yields) than the neutral species 1 – 2 and 4 – 5 (35.0–46.5% 3-HMP yields) when the reactions are all operated at 2 MPa CO pressure and 50 °C in MeOH solvent. Density functional theory (DFT) study by selecting 3 as a model suggests a cooperative catalytic reaction mechanism by [Co(CO)4] and its counter cation [3LCo(CO)3]+. The cobalt-homonuclear ion-pair catalyzed hydroalkoxycarbonylation of EO is present herein.  相似文献   

18.
Hydrogen transfer reduction processes are attracting increasing interest from synthetic chemists in view of their operational simplicity. Reaction of [Ph2PNHCH2‐C4H3S] with [Ru(η6‐benzene)(µ‐Cl)Cl]2, [Rh(µ‐Cl)(cod)]2 and [Ir(η5‐C5Me5)(µ‐Cl)Cl]2 gave a range of new monodendate complexes [Ru(Ph2PNHCH2‐C4H3S)(η6‐benzene)Cl2], 1, [Rh(Ph2PNHCH2‐C4H3S)(cod)Cl], 2, and [Ir(Ph2PNHCH2‐C4H3S)(η5‐C5Me5)Cl2], 3, respectively. All new complexes were fully characterized by analytical and spectroscopic methods. 1H? 31P NMR, 1H? 13C HETCOR or 1H? 1H COSY correlation experiments were used to confirm the spectral assignments. 1–3 are suitable catalyst precursors for the transfer hydrogenation of acetophenone derivatives. Notably [Ru(Ph2PNHCH2‐C4H3S)(η6‐benzene)Cl2], 1, acts as an excellent catalyst, giving the corresponding alcohols in 98–99% yields in 30 min at 82 °C (TOF ≤200 h?1) for the transfer hydrogenation reaction in comparison to analogous rhodium or iridium complexes. This transfer hydrogenation is characterized by low reversibility under these conditions. Copyright © 2011 John Wiley & Sons, Ltd.  相似文献   

19.
Abstract

The interaction of [Ru(η6-arene)(μ-Cl)Cl]2 and Ir(η5-C5Me5)(μ-Cl)Cl]2 with a new Ionic Liquid-based phosphinite ligand, [(Ph2PO)-C6H9N2Ph]Cl, (2) gave [Ru((Ph2PO)-C6H9N2Ph)(η6-p-cymene)Cl2]Cl (3), [Ru((Ph2PO)-C6H9N2Ph)(benzene)Cl2]Cl (4) and [Ir((Ph2PO)-C6H9N2Ph)(C5Me5)Cl2]Cl (5), complexes. All the compounds were characterized by a combination of multinuclear NMR and IR spectroscopy as well as elemental analysis. Furthermore, the Ru(II) and Ir(III) catalysts were applied to asymmetric transfer hydrogenation of acetophenone derivatives using 2-propanol as a hydrogen source. The results showed that the corresponding alcohols could be obtained with good activity (up to 55% ee and 99% conversion) under mild conditions. Notably, [Ir((Ph2PO)-C6H9N2Ph)(C5Me5)Cl2]Cl (5) is more active than the other analogous complexes in the transfer hydrogenation (up to 81% ee).  相似文献   

20.
Structures of Polar Magnesium Organyls: Synthesis and Structure of Base Adducts of Bis(cyclopentadienyl)magnesium Eight donor‐acceptor complexes of bis(cyclopentadienyl)magnesium ( 1 ) with N‐ and O‐donor Lewis bases have been synthesized and characterized by X‐ray structure analysis. With acetonitrile, dimethoxyethane, diethyleneglycoldimethylether, dioxane, and tetramethylethylenediamine simple 1:1 adducts are formed ( 2 – 6 ). In some cases a change of the hapticity of one cyclopentadienylring from η5 to η2 or η1 is observed ( 4 – 6 ). In the adduct with pentamethyldiethylenetriamine ( 7 ) one C5H5‐ring is removed from the magnesium atom forming the cation [Mg(C5H5)(PMDTA)]+ and an uncoordinated five‐ring anion. With the crown ether 15‐crown‐5 the two ionic Mg compounds 8 and 9 are formed which have a [Mg(15‐crown‐5)L2]2+‐cation [L = pyridine, THF] and two uncoordinated cyclopentadienyl anions. Cyclopentadienyl‐methyl‐magnesium reacts with 15‐crown‐5 to the salt [Mg(CH3)(15‐crown‐5)]+ C5H5? ( 10 ) which has also a free cyclopentadienyl anion.  相似文献   

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