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1.
Dithioformato [Re{η2-SC(H)S}(NO)P3]BPh4 (1), thioformamido [Re{η2-RNC(H)S}(NO)P3]BPh4 (2) (R = Et, p-tolyl), formamido [Re{η2-PhNC(H)O}(NO)P3]BPh4 (3) and formamidinato [Re{η2-p-tolylNC(H)Np-tolyl}(NO)P3]BPh4 (4) (P = PPh2OEt) complexes were prepared by allowing the hydride ReH2(NO)P3 to react first with triflic acid and then with the appropriate heteroallene CS2, RNCS, PhNCO and p-tolylNCNp-tolyl. Treatment of the ReH2(NO)L(PPh3)2 [L = P(OEt)3, PPh(OEt)2] and ReH2(NO)(PPh3)3 hydrides first with triflic acid and then with isothiocyanate RNCS (R = Et, p-tolyl) gave the [Re{η2-RNC(H)S}(NO){P(OEt)3}(PPh3)2]BPh4 (5, 6) and [Re(η2-RNC(H)S)(NO)(PPh3)3]BPh4 (7) derivatives. Depending on the nature of the phosphite, instead, the reaction of ReH2(NO)L(PPh3)2 and ReH2(NO)(PPh3)3 hydrides first with CF3SO3H and then with isocyanate R1NCO (R1 = Ph, p-tolyl) gave the chelate [Re{η2-R1NC(H)O}(NO){P(OEt)3}(PPh3)2]BPh4 (8) and [Re{η2-R1NC(H)O}(NO)(PPh3)3]BPh4(10) complexes with P(OEt)3 or PPh3, while the η1-coordinate [Re{η1-RNC(H)S}(NO){PPh(OEt)2}2(PPh3)2]BPh4 (9) derivative was obtained with the PPh(OEt)2 phosphite ligand. η1-Coordinate dithioformato [Re{η1-SC(H)S}(NO){PPh(OEt)2}2(PPh3)2]BPh4 (11) and formato [Re{η1-OC(H)O}(NO){PPh(OEt)2}2(PPh3)2]BPh4 (12) complexes, as well as the formamidinato [Re{η2-p-tolylNC(H)Np-tolyl}(NO){P(OEt)3}(PPh3)2]BPh4 (13) derivative were also prepared.  相似文献   

2.
The reactions of [ReCl22-NNC(O)Ph}(PPh3)2] (1) with t-BuOOH, in C6H6 or chlorinated solvents, at room temperature or with MeOH upon reflux in air lead to the trichloro-η1-benzoyldiazenido [ReCl31-NNC(O)Ph}(PPh3)2] (2) or the methoxy-oxo [ReOCl2(OMe)(PPh3)2] (3) compound, respectively, which have been characterized by spectroscopic and FAB+-MS methods, elemental and single crystal X-ray diffraction analyses. They show distorted octahedral coordinaiton geometries with trans triphenylphosphine ligands, an essentially linear η1-diazenido moiety in 2 and the methoxy group in 3 in trans position to the oxo ligand.  相似文献   

3.
Reaction of the potassium salts of N-thiophosphorylated thioureas of common formula RNHC(S)NHP(S)(OiPr)2 [R = pyridin-2-yl (HLa), pyridin-3-yl (HLb), 6-amino-pyridin-2-yl (HLc)] with Cu(PPh3)3I in aqueous EtOH/CH2Cl2 leads to mononuclear [Cu(PPh3)2La,b-S,S′] (1, 2) and [Cu(PPh3)Lc-S,S′] (3) complexes. Using copper(I) iodide instead of Cu(PPh3)3I, polynuclear complexes [Cun(L-S,S′)n] (4-6) were obtained. The structures of these compounds were investigated by IR, 1H, 31P{1H} NMR spectroscopy, ES-MS and elemental analyses. The crystal structures of Cu(PPh3)2Lb (2) and Cu(PPh3)Lc (3) were determined by single-crystal X-ray diffraction.  相似文献   

4.
The versatility of cuboidal Mo3S4Co clusters for the preparation of complexes with different numbers of valence shell electrons (VSE) in the cluster is described. The reaction of the geometrically incomplete cuboidal cluster salt [(η5-Cp′)3Mo3S4][pts] (pts = p-toluenesulfonate) with one molar equivalent of [Co2(CO)8] afforded almost quantitatively the electroneutral 60 VSE cluster [(η5-Cp′)3Mo3S4Co(CO)] (1), which previously has been prepared in low yield by Curtis et al. in autoclave syntheses [M.D. Curtis, U. Riaz, O.J. Curnow, J.W. Kampf, Organometallics 14 (1995) 5337]. Cluster 1 was also obtained in high yield by reaction of [(η5-Cp′)3Mo3S4][pts] with [(η5-Cp)Co(CO)2]. Reaction of [(η5-Cp′)3Mo3S4][pts] with two molar equivalents of [Co(I)(CO)3(PPh3)] led to a complex mixture of products, of which the electron deficient 58 VSE cluster salt [(η5-Cp′)3Mo3S4Co(I)][Co(I)3(thf)] ([2][Co(I)3(thf)]) was isolated as single crystals. In the crystal structures of 1 and [2][Co(I)3(thf)], the Co-Mo bond lengths are almost identical, indicating a delocalization of the electron deficiency in [2]+. The reduced form of [2]+, [(η5-Cp′)3Mo3S4Co(I)] (2), was prepared by oxidative substitution of the carbonyl ligand in 1 by I2. Further reactions of 1 with PPh3 and NO leading to the 60 and 61 VSE cluster complexes [(η5-Cp′)3Mo3S4Co(PPh3)] (3) and [(η5-Cp′)3Mo3S4Co(NO)] (4), respectively, enabled the preparation of Mo3S4Co clusters in altogether four different oxidation states.  相似文献   

5.
The reaction of the rhenium(V) nitrido complex [Re(N)Cl2(PPh3)2] with the tripodal ligand N(CH2CH2PPh2)3 (NP3) in THF gave [Re(N)Cl22-P,P-NP3)] (1) in which NP3 acts as a tridentate ligand using the nitrogen and two phosphorus donors for coordination. Refluxing 1 in a polar solvent such as ethanol produced [(η4-NP3)Re(N)Cl]Cl (2) in which NP3 acts as a tetradentate ligand. Treatment of complex [Re(O)Cl3(AsPh3)2] containing the [ReO]3+ core with NP3 in THF yielded [ReCl33-N,P,P-(N{CH2CH2Ph2}2{CH2CH2P(O)Ph2})}] (3). Complexes 1 and 3 have been characterized by single-crystal X-ray analyses.  相似文献   

6.
Reaction of the metalloligand [Pt2(μ-S)2(PPh3)4] with the N-heterocyclic carbene (NHC) complexes IPrAuCl, IMesAuCl and IMesAgCl in methanol gave the first examples of metal adducts of [Pt2(μ-S)2(PPh3)4] that contain NHC ligands, namely [Pt2(μ-S)2(PPh3)4AuL]+ (L = IPr, IMes) and [Pt2(μ-S)2(PPh3)4AgIMes]+. The complexes were isolated as hexafluorophosphate salts. Reaction of [Pt2(μ-S)2(PPh3)4] with excess IPrAuCl in refluxing methanol yielded only the mono-adduct, in contrast to the behaviour with the gold(I) phosphine complex Ph3PAuCl, which undergoes double addition giving [Pt2(μ-SAuPPh3)2(PPh3)4]2+. The X-ray structure of [Pt2(μ-S)2(PPh3)4AuIPr]PF6 was determined and reveals that the ‘free’ sulfide is substantially sterically protected by the IPr ligand, accounting for the low reactivity towards addition of a second AgIPr+ moiety.  相似文献   

7.
Treatment of 3-(4-carboxyphenylhydrazono)pentane-2,4-dione (HL) with transition metal ions afforded four novel complexes, [Zn(L)(μ2-OOCCH3)(H2O)]n (1), [Zn(L)2(MeOH)4] (2), {[Cd4(η2-L)4(μ2-η2-L)4(H2O)4(MeOH)2]·MeOH} (3) and [Cd(η2-L)(μ2-η2-OOCCH3)(H2O)2]n (4). Their crystal structures have been characterized by single-crystal X-ray crystallography. In polymer 1, the acetate anions bridge the Zn(II) ions forming an infinite one-dimensional (1-D) chain with L units acting as monodentate ligands in the side chain. In mononuclear complex 2, two L ligands act as monodentate fashion to coordinate to the Zn(II) ion. In its solid-state structure, [Zn(L)2(MeOH)4] groups are joined together by hydrogen bonds forming a three-dimensional (3-D) supramolecular network. In tetranuclear complex 3, four Cd(II) ions are linked by four μ2-η2-L ligands, and chelated by another four L ligands, respectively. In polymer 4, the acetate anions bridge the Cd(II) ions leading to a 1-D chain containing chelating L units in the side chain.  相似文献   

8.
The reactions of [ReCl22-N2C(O)Ph}(PPh3)2] (1) with 2-aminopyrimidine (H2Npyrm), 2,2′-bipyridine (bpy) and tetraethylthiuram disulfide (tds), in MeOH upon reflux, lead to the new η1-(benzoyldiazenido)rhenium(III) complexes [ReCl{η1-N2C(O)Ph}(HNpyrm)(PPh3)2] (2) and [ReCl21-N2C(O)Ph}(bpy)(PPh3)] (3), and the known oxo(diethyldithiocarbamato)dirhenium(v) complex [Re2O2(μ-O){Et2NC(S)S}4] (4), respectively. The Et2NC(S)S ligands in 4 result from S-S bond rupture of tds molecules. The obtained compounds have been characterized by IR, 1H, 31P{1H} and 13C{1H} NMR spectroscopies, FAB+-MS, elemental and single-crystal X-ray diffraction (for 2 and 4) analyses. Complex 2 represents the first structurally characterized Re compound derived from 2-aminopyrimidine. Besides, the redox behaviour of 2-4 in CH2Cl2 solution has been studied by cyclic voltammetry, and the Lever electrochemical ligand parameter (EL) has been estimated, for the first time, for HNpyrm. The electrochemical results are discussed in terms of electronic properties of the Re centres and the ligands.  相似文献   

9.
The synthesis and X-ray characterization of binuclear dipalladium(I) and diplatinum(I) p-xylene complexes [Pd26-C8H10)2(μ-Cl/Br)2(GaCl3)2] (1) and [Pt26-C8H10)2(Ga2Br7)2] (5) are reported. It was established that the toluene ligands in the palladium complex [Pd26-C7H8)2(GaCl4)2] (3) can be substituted by naphthalene without disruption of the metal-metal bond. The reaction of 3 with Pd(PPh3)4 leads to the formation of a dipalladium(II) μ-diphenylphosphido compound [Pd2(μ-PPh2)(PPh3)4] (GaCl4)2 · 4(C7H8) (4), most likely also involving a bridging μ-H ligand.  相似文献   

10.
The new ligand N,N-(2-methyl-2-(2-pyridyl)propan-1,3-diyl)bis(tetramethylguanidine) (L) and its four-coordinate, distorted square-planar copper(II) complex [CuLCl2] (1) were synthesized and structurally characterized. Similarly, bis(μ-OH)dicopper(II,II) complex [Cu2L2(OH)2](OTf)2 (2) was synthesized and structurally characterized. The pyridyl group in L does not coordinate in either 1 or 2. New examples of μ-η2:η2-disulfido dicopper(II,II) complexes were synthesized by treating a copper(I) complex of either L or L′ [L′ = 2′,2′-(propane-1,3-diyl)bis(1,1,3,3-tetramethylguanidine)] with elemental sulfur. [Cu2L2(S2)](PF6)2 (3) and [Cu2(S2)](PF6)2 (4) were both structurally characterized, and both structures have two copper(II) ions bridged by a disulfido ligand in a μ-η2:η2-manner. The ligands L and L′ coordinate in a bidentate fashion (like 1 and 2, the pyridyl ring does not coordinate in 3), and the geometry around the copper ions in 3 and 4 is distorted square planar. The metrical parameters of 3 and 4 were found to be similar to other μ-η2:η2-disulfido dicopper(II,II) complexes, and the Cu-S and Cu···Cu distances are among the shortest reported for this class of copper disulfide dimers.  相似文献   

11.
The interaction of an excess of the title ligands L with the cis-Pt(phos)2 moieties gives compounds a-bcis-[Pt(L-O)2(phos)2] (a, phos = P(Ph)3; b, phos = 1/2 dppe), in which O- is preferred to S-coordination. Such preference is confirmed by the fact that the same products are obtained by reaction of excess of L with the previously reported a-d complexes [Pt(L-O,S)(phos)2]+, (c, phos = PPh3, d, phos = 1/2 dppe), for which chelate ring opening occurs with rupture of Pt-S rather than Pt-O bonds. Compound a can be obtained also by oxidative addition of HL to [Pt(PPh3)3]. The Pt-O bonds in compounds a-d are stable towards substitution by Me2SO, pyridine and tetramethylthiourea. Substitution of L’s occurs with N,N′-diethyldithiocarbamate, which forms a very stable chelate with Pt(II). Thiourea and N,N′-dimethylthiourea also react, because they give rise to cyclometallated products [Pt(phos)2(NRC(S)NHR)]+ (R = H, CH3), with one ionised thioamido group, as revealed by an X-ray investigation of [Pt(PPh3)2(NHC(S)NH2)]+. The preference of O versus S coordination, as well as the stability of the Pt-O bonds, are discussed in terms of antisymbiosis.  相似文献   

12.
The Indox ligands, [{(S)-(iPr)Indox}n]H (1) [n=2 (a), 3 (b)] and [{(H)Indox}n=3]H (2), in which an indenyl group and an oxazoline ring are connected by an ethylene or propylene spacer, have been prepared. Reaction of [Ir(coe)2Cl]2 or [RhCl(C2H4)2]2 with the potassium salt of 1 afforded η5-[{(S)-(iPr)Indox}n]Ir(coe)2 (3) or η5-[{(S)-(iPr)Indox}n]Rh(C2H4)2 (6) as a 1:1 mixture of two diastereomers. The oxazoline ring in 3 and 6 did not coordinate to the metal center. When the complexes 3 or 6 reacted with iodine in diethyl ether, oxidative addition proceeded and the oxazoline ring coordinated to the metal center to give diiodoiridium(III) or rhodium(III) complexes, η51-[{(S)-(iPr)Indox}n]M(I)2 [M=Ir (4), Rh (7)]. The corresponding diiodoiridium(III) complex bearing the Indox ligand 2, η51-[{(H)Indox}n=2]Ir(I)2 (5), was also prepared by a similar method. Reaction of 4 or 7 with PPh3 in THF afforded diiodo-phosphine complexes, η5-[{(S)-(iPr)Indox}n]M(PPh3)(I)2 [M=Ir (8), Rh (9)] as a 1:1 mixture of two diastereomers in which the oxazoline ring dissociated from the metal center. The related reaction of 8 or 9 with more than 2 equiv. of AgOTf afforded the cationic complexes, [η51-[{(S)-(iPr)Indox}n]M(PPh3)(OTf)]OTf [M=Ir (10), Rh (11)], having a stereogenic center at the metal center as a mixture of only two diastereomers. From 1H and 31P NMR analyses, each diastereomer of 8 or 9 afforded only a single isomer of 10 or 11. The corresponding iridium(III) complex bearing the Indox ligand 2, [η51-[{(H)Indox}n=3]Ir(PPh3)(OTf)]OTf (12) was also prepared. The coordinated triflate ligand of 12 was slowly replaced by water in CDCl3 to afford the dicationic aquo complex, (S*pl,R*Ir)-[η51-[{(H)Indox}n=3]Ir(PPh3)(H2O)](OTf)2 (13). The monocationic complex, [η51-[{(S)-(iPr)Indox}n=2]Ir(PPh3)(I)]OTf (14a), having metal-centered chirality, was observed as a mixture of only two diastereomers in the reaction of 10a (a mixture of two diastereomers) with 1 equiv. of AgOTf. These observations indicated that the ligand exchange reaction of 8 or 9 with AgOTf contained the following three steps: (i) abstraction of one of the two prochiral iododes by AgOTf, (ii) recoordination of the oxazoline ring, and (iii) exchange of the remaining iodide for the triflate by AgOTf. The stereochemistry around the metal center was determined at the second step. All complexes have been characterized by usual spectroscopic methods as well as elemental analyses, and 4 and 13 have been characterized by X-ray analyses.  相似文献   

13.
Chemically modified electrodes were prepared by adsorption of Nafion/catalyst films of the type Nafion/Cp(PPh3)Ru(μ-I)(μ-dppm)PdCl2 (N1), Nafion/[η5-C5H4CH2CH2(NHMe2)+]Ru(PPh3)(μ-I)(μ-dppm)PtCl2 (N2), Nafion/[η5-C5H4CH2CH2(NHMe2)+]Ru(PPh3)(μ-Cl)(μ-dppm)PdCl2 (N3), Nafion/Cp(CO)Fe(μ-I)(μ-dppm)PdI2 (N4) and Nafion/Cp(CO)Ru(μ-I)(μ-dppm)PtI2 (N5) on glassy and vitreous carbon electrodes. Cyclic voltammetry and bulk electrolysis experiments were performed to assess the ability of these modified electrodes to electrocatalytically oxidize ethanol. Cyclic voltammograms using the N1-N5 modified glassy carbon electrodes displayed significant catalytic activity compared to oxidation of ethanol catalyzed by 1 in homogeneous solution. Bulk electrolysis of ethanol using electrodes coated with Nafion supported complexes 1-3 resulted in formation of the two- and four-electron oxidation products acetaldehyde and acetic acid, respectively, whilst bulk electrolysis using the complexes 4 and 5 produced only acetaldehyde.  相似文献   

14.
Addition of phenyldi(2-thienyl)phosphine (PPhTh2) to [Re2(CO)10−n(NCMe)n] (n = 1, 2) affords the substitution products [Re2(CO)10−n(PhPTh2)n] (1, 2) together with small amounts of fac-[ClRe(CO)3(PPhTh2)2] (3) (n = 2). Reaction of [Re2(CO)10] with PPhTh2 in refluxing xylene affords a mixture which includes 2, [Re2(CO)7(PPhTh2)(μ-PPhTh)(μ-H)] (4), [Re2(CO)7(PPhTh2)(μ-PPhTh)(μ-η11(S)-C4H3S)] (5) and mer-[HRe(CO)3(PPhTh2)2] (6). Phosphido-bridged 4 and 5 are formed by the carbon-phosphorus bond cleavage of the coordinated PPhTh2 ligand, the cleaved thienyl group being retained in the latter. Reaction of [Mn2(CO)10] with PPhTh2 in refluxing toluene affords [Mn2(CO)9(PPhTh2)] (7) and the carbon-phosphorus bond cleavage products [Mn2(CO)6(μ-PPhTh)(μ-η15-C4H3S)] (8) and [Mn2(CO)5(PPhTh2)(μ-PPhTh)(μ-η15-C4H3S)] (9). Both 8 and 9 contain a bridging thienyl ligand which is bonded to one manganese atom in a η5-fashion.  相似文献   

15.
Phosphorus-carbon bond is formed via: (i) the apparent HCCH insertion into Ir-P bond to produce Ir-CHCH-PPh3 group and (ii) the activation of the ring-methyl group of the coordinated Cp* (C5Me5 −) to produce Ir(η5-C5Me4CH2-PPh3) group from reactions of iridium(III)-Cp* complexes, [Cp*IrL3]n+ (n=1, 2); Cp*=C5Me5 −; L3=Cl(PPh3)2 (3), (CH3CN)3 (5). The following new P-C bond containing iridium(III) complexes have been prepared: [Cp*Ir(-CHCH-PPh3)Cl(PPh3)]+ (4) from 3 with HCCH; [Ir(η5-C5Me4CH2-PPh3)(H)(PPh3)2]2+ (6) from 5 with PPh3; [Cp*Ir(-CHCH-PPh3)2(PPh3)]2+ (7) from 5 with HCCH and PPh3; [Ir(η5-C5Me4CH2-PPh3)(-CHCH-PPh3)Cl(PPh3)]2+ (8) from [Ir(η5-C5Me4CH2-PPh3)(Cl)(PPh3)2]2+ (6-Cl) with HCCH; [Ir(η5-C5Me3(1,3-CH2-PPh3)2(H)(PPh3)2)]3+ (10) from [Ir(η5-C5Me4CH2-PPh3)(NCCH3)2(PPh3)]3+ (9) with PPh3; [Ir(η5-C5Me4CH2-PPh3)(-CHCH-PPh3)2(PPh3)]3+ (11) from 9 with HCCH and PPh3.  相似文献   

16.
The organometallic tin(IV) complexes [SnPh2(SRF)2] SRF = SC6F4-4-H (1), SC6F5 (2), were synthesized and their reactivity with [MCl2(PPh3)2] M = Ni, Pd and Pt explored. Thus, transmetallation products were obtained affording polymeric [Ni(SRF)(μ-SRF)]n, monomeric cis-[Pt(PPh3)2(SC6F4-4-H)2] (3) and cis-[Pt(PPh3)2(SC6F5)2] (4) and dimeric species [Pd(PPh3)(SC6F4-4-H)(μ-SC6F4-4-H)]2 (5) and [Pd(PPh3)(SC6F5)(μ-SC6F5)]2 (6) for Ni, Pt and Pd, respectively. The crystal structures of complexes 1, 2, 3, 4 and 6 were determined.  相似文献   

17.
Treatment of [Ti(OPri)2Cl2] with K(tpip) (tpip = [N(PPh2O)2]) followed by chlorination with HCl afforded cis-[Ti(tpip)2Cl]2 (1). Reduction of 1 with Na/Hg in THF gave [Ti(tpip)3] (2), which could also be prepared from [TiCl3(THF)3] and K(tpip). Recrystallization of [V(O)(tpip)2] (3) from CH2Cl2-Et2O in air afforded trinuclear [{V(O)}3(μ-tpip)3(μ-O)3] (4). Treatment of [Cr(NBut)2Cl2] and [Cr(NBut)Cl3(dme)] (dme = 1,2-dimethoxyethane) with [Ag(tpip)]4 led to isolation of [Cr(tpip)3] (6) and [Cr(NBut)(tpip)2Cl] (7), respectively. The Ti- and V-tpip complexes are capable of catalyzing oxidation of sulfides with tert-butyl hydroperoxide and H2O2. The crystal structures of 1, 2, and 4 have been determined.  相似文献   

18.
Heterocyclic thioamides, namely, imidazolidine-2-thione (imdzSH), 1-methyl-1, 3-imidazoline-2-thione (mimzSH), thiazolidine-2-thione (tzdSH) and 2,4-dithiouracil (dtucH2) with silver(I)/copper(I) salts in presence of triphenyl phosphine (PPh3) have yielded complexes of different nuclearity: mononuclear, [Ag(η1-S-HL)(PPh3)2Cl] (HL = imdzSH 1, mimzSH 2, tzdSH 3), dinuclear, [Ag21-S-tzdSH)2(μ-S-tzdSH)2(PPh3)2](NO3)24, and polynuclear, {Cu(μ-S,S-dtucH2)(PPh3)2X} (X = Cl 5, Br 6, I 7). All complexes have been characterized using analytical data, IR and multinuclear NMR spectroscopy (1H, 13C and 31P) and single crystal X-ray crystallography. The thio-ligands are bonded to the metal centers as neutral sulfur donors. The geometry around each metal center is distorted tetrahedral. Complexes 5-7 represent first examples of polymers of 2,4-dithiouracil in its coordination chemistry with metal salts. The hydrogen bonding interactions lead to the formation of 1D (2, 3, 7) and 2D (1, 4-6) sheet structures.  相似文献   

19.
The [ReOX3(AsPh3)(OAsPh3)] (X = Cl or Br) complexes react with two equivalents of 3,5-dimetylopyrazole (3,5-Me2pzH) in acetone at room temperature to give [{Re(O)X2(3,5- Me2pzH)2}2(μ-O)] (1 and 2). In the case of [ReOBr3(AsPh3)(OAsPh3)], a small quantity of the dinuclear rhenium complex [{Re(O)Br(3,5-Me2pzH)}2(μ-O)(μ-3,5-Me2pz)2] (3) has been isolated next to the main product 2. Treatment of [ReOX3(PPh3)2] compounds with two equivalents of 3,5-Me2pzH in acetone at room temperature leads to the isolation of symmetrically substituted dinuclear rhenium complexes [{Re(O)X(PPh3)}2(μ-O)(μ-3,5-Me2pz)2] (4 and 5). Refluxing of [ReO(OEt)X2(PPh3)2] complexes with 3,5-Me2pzH in ethanol affords unsymmetrically substituted dinuclear rhenium [{Re(O)X(PPh3)}(μ-O)(μ-3,5-Me2pz)2{Re(O)X(3,5- Me2pzH)}] complexes (6 and 7). The complexes obtained in these reactions have been characterised by IR, UV-Vis, 1H and 31P NMR. The crystal and molecular structures have been determined for 1, 2, 3, 4, 6 and 7 complexes.  相似文献   

20.
Complexes of the type (η4-BuC5H5)Fe(CO)2(P) (P = PPh2Py 3, PPhPy24, PPy35; Py = 2-pyridyl) were satisfactorily prepared. Upon treatment of 3 with M(CO)3(EtCN)3 (M = Mo, 6a; W, 6b), the pyridyl N-atom could be coordinated to the metal M, which then eliminates a CO ligand from the Fe-centre and induced an oxidative addition of the endo-C-H of (η4-BuC5H5). This results in a bridged hydrido heterodimetallic complex [(η5-BuC5H4)Fe(CO)(μ-P,N-PPh2Py)(μ-H)M(CO)4] (M = Mo, 7a, 81%; W, 7b, 76%). The reaction of 4 or 5 with 6a,b did not give the induced oxidative addition, although these complexes contain more than one pyridyl N-atom. The reaction of 4 with M(CO)4(EtCN)2 (M = Mo, 9a; W, 9b) produced heterodimetallic complexes [(η4-BuC5H5)Fe(CO)2(μ-P:N,N′-PPhPy2)M(CO)4] (M = Mo, 10a, 81%; W, 10b, 83%). Treatment of 5 with 6a,b gave [(η4-BuC5H5)Fe(CO)2(μ-P:N,N′,N″-PPy3)M(CO)3] (M = Mo, 12a, 96%; W, 12b, 78%).  相似文献   

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