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1.
Treatment of MBr(CO)5 (M = Mn or Re) with AgClO4 and an organonitrile in a suitable solvents affords the complexes fac-[M(CO)3(NCR)3][ClO4], (R = Et, Pr or PhCH2). The use of these complexes as synthetic precursors has been illustrated by the preparation of fac-[M(CO)3L3][ClO4], (M = Mn, L = NH3 or L3 = dien; M = Re, L3 = triphos). Pure fac-[Re(CO)3(NH3)3][ClO4] could not be prepared using this nitrile displacement route, but may be isolated, as the PF6? salt, from the reaction of [Re(CO)3(toluene)][PF6] and ammonia in chloroform.  相似文献   

2.
The reaction of Mn(CO)5OClO3 with nitriles,L, and dinitriles,L-L, in a wide variety of conditions affords cationic pentacarbonyls, [Mn(CO)5(L)] ClO4 and [Mn (CO)5(L-L)] ClO4 and fac-tricarbonyls, [Mn (CO)3 (L)3] ClO4 and [(CO) 3Mn (μ L-L) 3Mn (CO)3] (ClO4)2  相似文献   

3.
A project related to the crystal engineering of hydrogen-bonded coordination complexes has been initiatied and some of our first results are presented here. The compounds [Mn(DMU)6](ClO4)2 (1), [Ni(DMU)6](ClO4)2 (2), [Cu(OClO3)2(DMU)4] (3) and [Zn(DMU)6](ClO4)2 (4) have all been prepared from the reaction of N,N-dimethylurea (DMU) and the appropriate hydrated metal perchlorate salt. Crystal structure determinations of the four compounds demonstrate the existence of [M(DMU)6]2+ cations and ClO4 counterions in (1), (2) and (4), whereas in (3) monodentate coordination of the perchlorate groups leads to molecules. The [M(DMU)6]2+ cations and ClO4 anions self-assemble to form a hydrogen-bonded one-dimensional (1D) architecture in (1) and different 2D hydrogen-bonded networks in (2) and (4). The hydrogen bonding functionalities on the molecules of (3) create a 2D structure. The complexes were also characterised by room-temperature effective magnetic moments and i.r. studies. The data are discussed in terms of the nature of bonding and the known structures.  相似文献   

4.
Summary The rhodium(I) carbonyl compounds [Rh(CO)L22] [BF4]. 1/2CH2Clnn2 (L = PPh2 or AsPh3) react with the nucleophiles OMe, RCOO (R = Me, Et) under nitrogen to form [Rh(OR)(CO)L2] (1)–(2) and [Rh(OOCR)(CO)L2] (7)–(10), respectively. Addition of [Rh(CO)2(PPh3)2]-[BF 4] to OMe under nitrogen produces [Rh(COOMe)-(CO) (PPh3)2]-MeOH (3), whilst reactions of [Rh(CO)-(PPh3)2] [BF4]·1/2CH2Cl2 and [Rh(CO)2(PPh3)2] [BF4] with OR- (R = Me, Et or n-Pr) in the presence of CO produce [Rh(COOR)(CO)2(PPh3)2] (4)–(6). The products have been characterised by i.r., 1H, 31P, 13Cn.m.r. spectroscopy and elemental analysis.  相似文献   

5.
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   

6.
Summary The anodic and cathodic behaviour of the complexesmer-[ReCl(CO)3(PMe2Ph)2],fac[ReCl(CO)3(PMe2Ph)2],mer-[ReCl(CO)3(PPh3)2], and [ReCl(CO)2(PMe2Ph)3] in acetonitrile solvent were studied using platinum and mercury electrodes. Cyclic voltammetry and controlled potential coulometry were the main electroanalytical techniques employed. The nature of the electrolysis products and of the electrode oxidation and reduction processes were investigated. In particular, [ReCl(CO)(MeCN)2(PMe2Ph)3][ClO4]2, [ReCl3(CO)2(PMe2Ph)2], and a not completely defined rhenium(-I) complex were electrochemically synthesized and characterized by means of i.r. and1H n.m.r. spectroscopy, and by elemental analysis.  相似文献   

7.
Summary The preparation and properties of cationic arenerhodium(I) complexes of general formula [Rh(diolefin)(6arene)]ClO4 (diolefin=1,5-cyclooctadiene, tetrafluorobenzobarrelene or trimethyltetrafluorobenzobarrelene; arene = biphenyl or diphenylmethane) are described. These complexes react with the solvated intermediate complex [Rh(diolefin)(Me2CO)x]ClO4 to give homobimetallic [(diolefin)Rh(Ph2CH2)Rh(diolefin)](ClO4)2 derivatives. New heterobimetallic complexes of the type [(diolefin)Rh(Ph2CH2)Cr(CO)3]ClO4 have been synthesized by reaction of Cr(CO)3(6-Ph2CH2) with the solvated complex [Rh(diolefin)(Me2CO)x]ClO4 or, alternatively by treatment of [Rh(diolefin)(6-arene)]ClO4 with the complex Cr(CO)3(6Me3B3N3Me3) in chloroform solution.  相似文献   

8.
A chemically non‐innocent pyrrole‐based trianionic (ONO)3? pincer ligand within [(pyr‐ONO)TiCl(thf)2] ( 2 ) can access the dianionic [(3H‐pyr‐ONO)TiCl2(thf)] ( 1‐THF ) and monoanionic [(3H,4H‐pyr‐ONO)TiCl2(OEt2)][B{3,5‐(CF3)2C6H3}4] ( 3‐Et2O ) states through remote protonation of the pyrrole γ‐C π‐bonds. The homoleptic [(3H‐pyr‐ONO)2Zr] ( 4 ) was synthesized and characterized by X‐ray diffraction and NMR spectroscopy in solution. The protonation of 4 by [H(OEt2)2][B{C6H3(CF3)2}4] yields [(3H,4H‐pyr‐ONO)(3H‐pyr‐ONO)Zr][B{3,5‐(CF3)2C6H3}4] ( 5 ), thus demonstrating the storage of three protons.  相似文献   

9.
Two new manganese thioarsenates(V) [Mn(Hen)2(AsS4)2]·2(Hen) (1, en = ethylenediamine) and β-{[Mn(dien)2][Mn2(dien)2(AsS4)2] (2, dien = diethyleneamine) have been solvothermally synthesized and structurally characterized. 1 contains [Mn(Hen)2(AsS4)2]2? built from two [AsS4]3? anions bound to [Mn(Hen)2]4+, and two protonated Hen+ cations, which provide a rare example of monoprotonated ethylenediamine as monodentate ligand within chalcogenidoarsenates. 2 contains two conformations of a [Mn2(dien)2(AsS4)2]2? cluster constructed from two [Mn(dien)]2+ groups bridged by two μ-[AsS4]3? anions and charge compensating complex cations [Mn(dien)2]2+. Their optical properties have been characterized by UV–vis spectra and the theoretical band structure of 1 has also been studied.  相似文献   

10.
Summary The use of [RhCl(CO)(PPh3)]2 as a precursor for the synthesis of complexes of the types [Rh(CO)L2(PPh3)]A (A = [ClO4] or [BPh4]; L = pyridine type ligand) and [Rh(CO)(L-L)(PPh3)]A (A = [ClO4] or [BPh4]; L-L = bidentate nitrogen donor) and the preparation of several complexes of the types [Rh(CO)L(PPh3){P(p-RC6H4)3}]BPh4 and [Rh(CO)(phen)(PPh3){P(p-RC6H4)3}]A (A = [ClO4] or [BPh4]; R = H or Me) is described.Author to whom all correspondence should be directed.  相似文献   

11.
Summary In complexes of the Mn(CO)3(chelate)OClO3 and [Mn(CO)3(chel)(Me2CO)]ClO4 type, the facile replacement of the OClO3- or, respectively, Me2CO-groups by a variety of neutral ligands allows the preparation of novel cationic Dicarbonyl complexes, [Mn(CO)3(chelate)LL]ClO4, at room temperature. Dicarbonyl derivatives, [Mn(CO)2(chelate)L2]ClO44 or [Mn(CO)2(chelate)LL]ClO4, can be obtained by working at the reflux temperature. The properties of the novel compounds are given and their structures are discussed.A cationic tetracarbonyl manganese(I) complex has also been isolated.  相似文献   

12.
Oxidative addition of diphenyl disulfide to the coordinatively unsaturated [Mn(CO)5]? led to the formation of low-spin, six-coordinate cis-[Mn(CO)4(SPh)2]?. The complex cis-[PPN][Mn(CO)4(SPh)2] crystallized in monoclinic space group P21/c with a = 9.965(2) Å, b = 24.604(5) Å, c = 19.291(4) Å, β = 100.05(2)°, V = 4657(2)Å3, and Z = 4; final R = 0.036 and Rw = 0.039. Thermal transformation of cis-[Mn(CO)4(SPh)2]? to [(CO)3Mn(μ-SPh)3Mn(CO)3]? was completed overnight in THF at room temperature. Additionally, reaction of [Mn(CO)5]? and PhSH in 1:2 mole ratio also led to cis-[PPN](Mn(CO)4(SPh)2]. Presumably, oxidative addition of PhSH to [Mn(CO)4]? was followed by a Lewis acid-base reaction to form cis-[Mn(CO)4(SPh)2]? with evolution of H2.  相似文献   

13.
The 1,5-bis(3,5-dimethyl-1-pyrazolyl)-3-thiapentane ligand (bdtp) reacts with [Rh(COD)(THF)2][BF4] to give [Rh(COD)(bdtp)][BF4] ([1][BF4]), which is fluxional in solution on the NMR time scale. Its further treatment with carbon monoxide leads to a displacement of the 1,5-cyclooctadiene ligand, generating a mixture of two complexes, namely, [Rh(CO)2(bdtp)][BF4] ([2][BF4]) and [Rh(CO)(bdtp3N,N,S)][BF4] ([3][BF4]). In solution, [2][BF4] exists as a mixture of two isomers, [Rh(CO)2(bdtp2N,N)]+ ([2a]+) and [Rh(CO)2(bdtp3N,N,S)]+ ([2b]+; major isomer) rapidly interconverting on the NMR time scale. At room temperature, [2][BF4] easily loses one molecule of carbon monoxide to give [3][BF4]. The latter is prone to react with carbon monoxide to partially regenerate [2][BF4]. The ligands 1,2-bis[3-(3,5-dimethyl-1-pyrazolyl)-2-thiapropyl]benzene (bddf) and 1,8-bis(3,5-dimethyl-1-pyrazolyl)-3,6-dithiaoctane (bddo) are seen to react with two equivalents of [Rh(COD)(THF)2][BF4] to give the dinuclear complexes [Rh2(bddf)(COD)2][BF4]2 ([4][BF4]2) and [Rh2(bddo)(COD)2][BF4]2 ([5][BF4]2), respectively. In such complexes, the ligand acts as a double pincer holding two rhodium atoms through a chelation involving S and N donor atoms. Bubbling carbon monoxide into a solution of [4][BF4]2 results in loss of the COD ligand and carbonylation to give [Rh2(bddf)(CO)4][BF4]2 ([6][BF4]2). The single-crystal X-ray structures of [3][CF3SO3], [5][BF4]2 and [6][BF4]2 are reported.  相似文献   

14.
The reaction of MnII(O2CMe)2 and NaCN or LiCN in water forms a light green insoluble material. Structural solution and Rietveld refinement of high-resolution synchrotron powder diffraction data for this unprecedented, complicated compound of previously unknown composition revealed a new alkali-free ordered structural motif with [MnII43-OH)4]4+ cubes and octahedral [MnII(CN)6]4− ions interconnected in 3D by MnII-N≡C-MnII linkages. The composition is {[MnII(OH2)3][MnII(OH2)]3}(μ3-OH)4][MnII(μ-CN)2(CN)4] ⋅ H2O=[MnII43-OH)4(OH2)6][MnII(μ-CN)2(CN)4] ⋅ H2O, which is further simplified to [Mn4(OH)4][Mn(CN)6](OH2)7 ( 1 ). 1 has four high-spin (S=5/2) MnII sites that are antiferromagnetically coupled within the cube and are antiferromagnetically coupled to six low-spin (S=1/2) octahedral [MnII(CN)6]4− ions. Above 40 K the magnetic susceptibility, χ(T), can be fitted to the Curie–Weiss expression, χ ∝(Tθ)−1, with θ=−13.4 K, indicative of significant antiferromagnetic coupling and 1 orders as an antiferromagnet at Tc=7.8 K.  相似文献   

15.
The cis-[Mn(CO)4(TePh)2]?, similar to bidentate ligand PhTe(CH2)3TePh, acts as a “chelating metalloligand” for the synthesis of metallic tellurolate compounds. The reaction of cis[Mn(CO)4(TePh)2]? with BrMn(CO)5 in THF leads to a mixture of products[(CO)3,BrMn(μ-TePh)2Mn(CO)4]? (1) and Mn2(μ-TePh)2(CO)g (2). Complex 1 crystallizes in the triclinic space group Pl? with a = 11.309(3) Å, b = 14.780(5) Å, c = 19.212(6) Å, a = 76.05(3)° β = 72.31(3)°, γ = 70.41(3)° V = 2848(2) Å3, Z = 2. Final R = 0.034 and Rw = 0.035 resulting from refinement of 10021 total reflections with 677 parameters, Dropwise addition of (MeTe)2 to a solution of [Me3O][BF4] in CH3CN leads to formation of [Me2TeTeMe][BF4], a potential MeTe+ donor ligand. In contrast to oxidative addition of diphenyl ditelluride to [Mn(CO)s]? to give cis-[Mn(CO)4(TePh)2]? which was thermally transformed into [(CO)3Mn(μ-TePh)3Mn(CO)3]?, reaction of [Mn(CO)5]?with [Me2TeTeMe]+ proceeded to give the monomeric species MeTeMn(CO)5 as initial product which was then dimerized into Mn2(μ-TeMe)2(CO)g (4).  相似文献   

16.
Summary Monocarbonyls of manganese(I) with two chelating diphosphinestrans-[Mn(CO)(diphos)2(L)]A, [diphos = 1,2-bis(diphenylphosphino)ethane, dppe, or bis(diphenylphosphino)methane, dppm; L=nitriles, NCR (NCMe, NCEt, NCPh, or NCCH2Ph), dinitriles, NCGCN (NCCH2CN, NCCH2CH2CN, oro-(NC)2C6H4), isonitriles, CNR, (CNPh, or CNBut); A = C1O 4 or PF 6 ],trans-[(Mn(CO)(dppm)2)2(-NCCH2CH2CN)](ClO4)2 and the monocarbonyl with one diphosphine,mer-[Mn(CO)(dppe)(CNBut)3]ClO4, have been prepared fromtrans-[Mn(CO)(diphos)2Br].In this paper we have adopted the convention that gives positive shift to signals at higher frequency of ext. H3PO4.  相似文献   

17.
The methylation of the uncoordinated nitrogen atom of the cyclometalated triruthenium cluster complexes [Ru3(μ‐H)(μ‐κ2N1,C6‐2‐Mepyr)(CO)10] ( 1 ; 2‐MepyrH=2‐methylpyrimidine) and [Ru3(μ‐H)(μ‐κ2N1,C6‐4‐Mepyr)(CO)10] ( 9 ; 4‐MepyrH=4‐methylpyrimidine) gives two similar cationic complexes, [Ru3(μ‐H)(μ‐κ2N1,C6‐2,3‐Me2pyr)(CO)10]+( 2 +) and [Ru3(μ‐H)(μ‐κ2N1,C6‐3,4‐Me2pyr)(CO)10]+ ( 9 +), respectively, whose heterocyclic ligands belong to a novel type of N‐heterocyclic carbenes (NHCs) that have the Ccarbene atom in 6‐position of a pyrimidine framework. The position of the C‐methyl group in the ligands of complexes 2 + (on C2) and 9 + (on C4) is of key importance for the outcome of their reactions with K[N(SiMe3)2], K‐selectride, and cobaltocene. Although these reagents react with 2 + to give [Ru3(μ‐H)(μ‐κ2N1,C6‐2‐CH2‐3‐Mepyr)(CO)10] ( 3 ; deprotonation of the C2‐Me group), [Ru3(μ‐H)(μ3‐κ3N1,C5,C6‐4‐H‐2,3‐Me2pyr)(CO)9] ( 4 ; hydride addition at C4), and [Ru6(μ‐H)26‐κ6N1,N1′,C5,C5′,C6,C6′‐4,4′‐bis(2,3‐Me2pyr)}(CO)18] ( 5 ; reductive dimerization at C4), respectively, similar reactions with 9 + have only allowed the isolation of [Ru3(μ‐H)(μ3‐κ2N1,C6‐2‐H‐3,4‐Me2pyr)(CO)9] ( 11 ; hydride addition at C2). Compounds 3 and 11 also contain novel six‐membered ring NHC ligands. Theoretical studies have established that the deprotonation of 2 + and 9 + (that have ligand‐based LUMOs) are charge‐controlled processes and that both the composition of the LUMOs of these cationic complexes and the steric protection of their ligand ring atoms govern the regioselectivity of their nucleophilic addition and reduction reactions.  相似文献   

18.
Summary The reaction of previously reported RhI and IrI cationic complexes towards carbon monoxide and triphenylphosphine has been studied. Carbonyl rhodium(I) mixed complexes of the formulae [Rh(CO)L2(PPh3)]ClO4, (L=tetrahydrothiophene(tht), trimethylene sulfide(tms), SMe2, or SEt2), [(CO)(PPh3)Rh{-(L-L)}2Rh(PPh3)(CO)](ClO4)2 (L-L= 2,2,7,7-tetramethyl-3,6-dithiaoctane (tmdto), (MeS)2(CH2)3 (dth), or 1,4-dithiacyclohexane (dt), [Rh(CO)L(PPh3)2]ClO4 (L= tht, tms, SMe2, or SEt2), and carbonyl iridium(I) complexes of the formulae [Ir(CO)2(COD)(PPh3)]ClO4, [Ir(CO)(COD)(PPh3)2]ClO4, [(CO)(COD)(PPh3) Ir{-(L-L)} Ir(PPh3)(COD)(CO)](ClO4)2 (L-L = tmdto or dt), [(CO)2 (PPh3)Ir(-tmdto)Ir(PPh3)(CO)2](ClO4)2, [(CO)2(PPh3) Ir(-dt)2Ir(PPh3)(CO)2](ClO4)2, were prepared by different synthetic methods.  相似文献   

19.
Summary Direct oxidation of iron and copper in a donor-acceptor medium, L + CCl4, where L is dimethylsulphoxide, dimethylformamide or acetonitrile was employed to obtain complex compounds:cis-[FeCl2(DMSO)4]Cl] (3), 2 FeCl3 · 3 DMSO (5), [FeCl(DMSO)5][FeCl4]2] (6), [FeCl(DMSO)5][Fe2Cl6O] (7),cis-[FeCl2(DMF)4][FeCl4] (8), [Fe(MeCN)6][FeCl4]2 (9) andcis-[CuCl2(DMF)2]2 (10), The structures of complexes (9) and (10) have been established by x-ray diffraction analysis and compared with those of (3), (6), (7) and (8) which are reported elsewhere.The [FeCl(DMSO)5][Fe2Cl6O] complex (7) is formed by oxidation of iron fromcis-[FeIIICl2(DMSO)4]2[FeIICl4] (4) in ethanol. One of the 5 DMSO molecules of (7) was found to be disordered; the Mössbauer spectroscopy data suggest that it can move within the cation coordination sphere.Mössbauer spectroscopy and x-ray diffraction analysis indicate electron isomerism in one of the complexes.For papers 4 and 5 of these series see refs. 1 and 2.  相似文献   

20.
The betain‐like SOC2(PPh3)2 ( 1a ) reacts with [Mn2(CO)10] in THF to produce the salt‐like complex [(CO)4Mn(SOC2{PPh3}2)2][Mn(CO)5] ( 2 ). 1a is bonded via the sulfur atoms which are arranged in trans position in the octahedral environment of the manganese atom. With InCl3 from CH2Cl2 solution the addition product [Cl3In(SOC2{PPh3}2)] ( 3 ) is obtained along with the salt (H2C{PPh3}2)[InCl4]2 ( 4 ), which is the result of proton abstraction from the solvent. The crystal structures of 2· 0.5THF and 4· CH2Cl2 are reported. The compounds are further characterized by IR and 31P NMR spectroscopy.  相似文献   

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