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1.
Treatment of trans-[TcX4L2] (X Cl, Br and L PPH3, PMe2Ph) with carbon monoxide (1 atm) in boiling ethyleneglycol methyl ether, gives trans-[TcX-(CO)3L2]. Under these conditions the mer-[TcX3(PMe2Ph)3] (X Cl, Br) gives a mixture of the trans-[TcX(CO)3(PMe2Ph)2] and cis-[TcX(CO)2(PMe2Ph)3] complexes, but when added free dimethylphenylphosphine is present only the second product is obtained. Carbon monoxide reacts with mer-[TcCl3(PMe2Ph)3] in refluxing ethanol to give [TcCl3(CO)(PMe2Ph)3] a C3 v seven-coordinate technetium(III) complex.The stereochemistry of the complexes was determined from their IR and1H NMR spectra.  相似文献   

2.
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   

3.
Summary The isomerization offac-[ReCl(CO)3(PMe2Ph)2]+ to the corresponding meridional-trans isomer has been studied by electroanalytical techniques in MeCN solvent. Chronoamperometric and cyclic voltammetric data relative to the oxidation offac- andmer-[ReCl(CO)3(PMe2Ph)2] allow the accurate determination of the very high kinetic rate constant for the isomerization and permit discussion of thermodynamic aspects of redox homogeneous chemical reactions involving species of the different redox couples arising from the anodic processes.  相似文献   

4.
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   

5.
The novel hydridocobalt(III) complex [mer-Co(H)(SPh)2(PMe3)3] (1) was prepared by reaction of thiophenol with [Co(PMe3)3Cl], [Co(PMe3)4] and [Co(PMe3)4Me]. A dinuclear cobalt dithiophenolato complex [Co(PMe3)2(SPh)]2 (2) was obtained from the reaction of thiophenol with [Co(PMe3)4Me]. Reaction of 1 with iodomethane afforded complex [Co(PMe3)3(I)2] (3). Reaction of complex 2 with carbon monoxide gave a mononuclear dicarbonyl cobalt(I) complex [Co(PMe3)3(CO)2(SPh)] (4). The crystal structures of 1-4 were determined by X-ray diffraction. Formation mechanism of 1 is discussed.  相似文献   

6.
The reactions of [M2Cl2(μ-Cl)2(PMe2Ph)2] with mercapto-o-carboranes in the presence of pyridine afforded mono-nuclear complexes of composition, [MCl(SCb°R)(py)(PMe2Ph)] (M = Pd or Pt; Cb° = o-C2B10H10; R = H or Ph). The treatment of [PdCl2(PEt3)2] with PhCb°SH yielded trans-[Pd(SCb°Ph)2(PEt3)2] (4) which when left in solution in the presence of pyridine gave another substitution product, [Pd(SCb°Ph)2(py)(PEt3)] (5). The structures of [PdCl(SCb°Ph)(py)(PMe2Ph)] (1), [Pd(SCb°Ph)2(PEt3)2] (4) and [Pd(SCboPh)2(py)(PEt3)] (5) were established unambiguously by X-ray crystallography. The palladium atom in these complexes adopts a distorted square-planar configuration with neutral donor atoms occupying the trans positions. Thermolysis of [PdCl(SCb°)(py)(PMe2Ph)] (2) in TOPO (trioctylphosphine oxide) at 200 °C gave nanocrystals of TOPO capped Pd4S which were characterized by XRD pattern and SEM.  相似文献   

7.
The bridging vinyl clusters [HOs3(CHCHR)(CO)10] (R = H, Ph, or n-Bu) react with PMe2Ph to give the zwitterionic adducts [HOs3(CHCHRPMe2Ph)(CO)10] which contain μ2-alkylidene ligands. The adducts are not formed so readily when R = Ph or n-Bu but most readily when polar solvents are used. All three CHCHR complexes add cyanide ion irreversibly to give the anionic clusters which were isolated as [N(PPh3)2][HOs3(CHCHRCN)(CO)10]. There is infrared evidence for the addition of various other anions. Acid reverses the addition of methoxide but HCl reacts with the cyanide adduct [HOs3(CHCH2CN)(CO)10]? to give [HOs3Cl(CO)10] and EtCN. No evidence for nucleophilic addition at [HOs3(PhCCHPh)(CO)10] was obtained.  相似文献   

8.
9.
Summary Treatment oftrans-[Mo(CNMe)2(PMe2Ph)4] andme-[W(CNMe)3(PMe2Ph)3] with sulphuric or hydrochloric acids in methanol or ethanol, or in methanol alone, under irradiation, gives methylamine, ammonia and hydrocarbons (mainly methane). The complex [W2(CNMe)4(-CNHMe)2(PMe2Ph)4]2+ cation has been obtained by the treatment ofmer-[W(CNMe)3(PMe2Ph3] with H2SO4 or [Et2OH][BF4] and gives methylamine, ammonia and methane on further acid treatment.  相似文献   

10.
The reaction of trans-I(CO)4WCNEt2 (I) with a slight excess of PMe3 results in the replacement of one carbonyl group to give mer-I(CO)3(PMe3)WCNEt2 (II). Complex II reacts at room temperature with additional PMe3 under CO replacement to give a mixture of cis- and trans-dicarbonyl-I(CO)2(PMe3)2WCNEt2 (III, IV). Complexes III and IV, which can be separated by column chromatography, isomerize slowly at room temperature, the thermodynamic equilibrium favouring the more stable trans complex IV. The cis isomer III can be obtained from I(CO)2py2WCNEt2 (V) and PMe3. Another CO ligand can be eliminated from III or IV by an excess of PMe3 in boiling hexane and gives mer-I(CO)(PMe3)3WCNEt2 (VI). Moreover complex VI can be prepared by oxidative decarbonylation from III or IV by iodine and subsequent reduction of the intermediate, an isolable, seven-coordinated carbyne complex formulated as (I)3(CO)(PMe3)2WCNEt2 (VII), by two equivalents of PMe3.  相似文献   

11.
Green and blue isomers of the oxo derivative MoOCl2(PMe3)3 have been obtained by an oxygen-atom abstraction reaction between MoCl4(thf)2 and equimolar amounts of water in the presence of PMe3. Methatesis with KX(X = NCO, NCS) yields MoOX2(PMe3)3 and with NaS2CNEt2, MoO(S2CNEt2)2(PMe3). The latter complex readily loses PMe3 to give MoO(S2CNEt2)2 from which it can be prepared by addition of the phosphine ligand.Reaction of the blue purple complex, MoCl3(thf)3 (I), with excess PMe3 gives mer-MoCl3(PMe3)3 which loses PMe3 on heating in toluene to afford [MoCl3(PMe3)2]2. Reduction of (I) with phosphines and zinc in tetrahydrofuran gives the dinuclear molybdenum(II) halide complexes Mo2Cl4L4 (L = PMe3, PEt3, PhMe2Ph, PEt2Ph; L2 = dppm), while Zn-acetic acid reduction yields Mo2(CO2Me)4. Interaction of the chlorocarbonyl species MoCl2(CO)2(PMe3)3 with Tl(acac) affords Mo(acac)Cl(CO)(PMe3)3 which has an unusually low CO stretching frequency for a terminal carbonyl group (1755 cm?1).  相似文献   

12.
The complexes trans-MCl2(PMe3)4 (M = Ru, Os) react with CO and P(OMe)3 to give the mono- and disubstituted derivatives trans,mer-MCl2(PMe3)3L (L = CO, P(OMe)3) and all-trans-MCl2(PMe3)2[P(OMe)3]2, respectively. On reaction of trans-RuCl2[P(OMe)3]4 with CO and PMe3, the compounds trans,mer-RuCl2[P(OMe)3]3(CO) and trans,cis,cis-RuCl2(PMe3)2[P(OMe)3]2 are synthesized. The reduction of MCl2(PMe3)2[P(OMe)3]2 with Na/Hg in benzene or toluene via {M(PMe3)2[P(OMe)3]2} as an intermediate leads to subsequent intermolecular addition of the arene and to the aryl(hydrido)metal complexes cis,trans,cis-MH(C6H5)(PMe3)2[P(OMe)3]2 (M = Ru, Os) and MH(C6H4CH3)(PMe3)2[P(OMe)3)2 (M = Os). For M = Ru, in the presence of P(OMe)3, the ruthenium(0) compound Ru(PMe3)2(P(OMe)3]3 is formed. The hydrido(phenyl) complexes react with equimolar amounts of Br2 or I2 by elimination of benzene to produce the dihalogenometal compounds cis,trans,cis-MX2(PMe3)2[P(OMe)3]2. The reaction of trans-RuCl2(PMe3)4 with Na/Hg in the presence of PPh3 leads to the ortho-metallated complex fac-RuH(η2-C6H4PPh2)(PMe3)3, which reacts with CH3I, CS2, COS and HCl to give the compounds mer-RuI(η2-C6H4PPh2)(PMe3)3, fac-Ru(SCHS)(η2-C6H4PPh2)(PMe3)3, fac-Ru(S2CO)(CO)(PMe3)3 and RuCl2(PMe3)3, respectively. The paramagnetic 17-electron complexes [MCl2(PMe3)nL4-n]PF6 are obtained on oxidation of MCl2(PMe3)nL4-n with AgPF6. Their UV spectra exhibit a characteristic CT band. [RuCl2(PMe3)4]PF6 and [OsCl2(PMe3)4]PF6 react with CO and P(OMe)3 by reduction to form the corresponding ruthenium(II) and osmium(II) compounds MCl2(PMe3)nL4-n.  相似文献   

13.
[Ir(cod)Cl]2 (cod = 1,5-cyclooctadiene) reacts with PMe2Ph in CH3CN to give the red cation [Ir(PMe2Ph)4]+. This complex in CH3CN reacts with H2 to give cis-[IrH2(PMe2Ph)4]+, but on reflux for 6 h in the absence of H2, it gives the first example of a cyclometallated PMe2Ph complex fac-[IrH(PMe2C6H4)(PMe2Ph)3]+, as shown by PMR spectroscopy and preliminary X-ray crystallographic data.  相似文献   

14.
The cyclopentadienyl molybdenum hydride compounds, CpRMo(PMe3)3–x(CO)xH (CpR = Cp, Cp*; x = 0, 1, 2 or 3), are catalysts for the dehydrogenation of formic acid, with the most active catalysts having the composition CpRMo(PMe3)2(CO)H. The mechanism of the catalytic cycle is proposed to involve (i) protonation of the molybdenum hydride complex, (ii) elimination of H2 and coordination of formate, and (iii) decarboxylation of the formate ligand to regenerate the hydride species. NMR spectroscopy indicates that the nature of the resting state depends on the composition of the catalyst. For example, (i) the resting states for the CpMo(CO)3H and CpMo(PMe3)(CO)2H systems are the hydride complexes themselves, (ii) the resting state for the CpMo(PMe3)3H system is the protonated species [CpMo(PMe3)3H2]+, and (iii) the resting state for the CpMo(PMe3)2(CO)H system is the formate complex, CpMo(PMe3)2(CO)(κ1-O2CH), in the presence of a high concentration of formic acid, but CpMo(PMe3)2(CO)H when the concentration of acid is low. While CO2 and H2 are the principal products of the catalytic reaction induced by CpRMo(PMe3)3–x(CO)xH, methanol and methyl formate are also observed. The generation of methanol is a consequence of disproportionation of formic acid, while methyl formate is a product of subsequent esterification. The disproportionation of formic acid is a manifestation of a transfer hydrogenation reaction, which may also be applied to the reduction of aldehydes and ketones. Thus, CpMo(CO)3H also catalyzes the reduction of a variety of ketones and aldehydes to alcohols by formic acid, via a mechanism that involves ionic hydrogenation.  相似文献   

15.
《Polyhedron》1987,6(1):111-117
Treatment of mer,cis-[MnCl(CO)2(dppm-PP′)(dppm-P)] with [Rh2Cl2(CO)4] in the presence of CO and PF6 gives [Cl(OC)2Mn(μ-dppm)2Rh(CO)2]PF6 which might have a bridging chloride ligand. Similar treatment of mer,cis-[MnBr(CO)2(dppm-PP')(dppm-P)] gave [Br(OC)2Mn(μ-dppm)2Rh(CO)2]PF6 which 31P-{1H} NMR spectroscopy showed to be a mixture of two closely related species. Treatment of mer,cis-[MnCl(CO)2(dppm-PP') (dppm-P)] with [Rh2Cl2(CO)4] at −30°C probably gave [Cl(OC)2Mn(μ-dppm)2 Rh(CO)2]Cl but this decomposes above 0°C: the corresponding dibromide was made similarly and is somewhat more stable than the dichloride. Treatment of mer,cis-[MnX(CO)2(dppm-PP')(dppm-P)] (X = Cl or Br) with [IrCl(CO)2(p-toluidine)] and CO-PF6 gave [X(OC)2Mn(μ-dppm)2Ir(CO)2]PF6. Neutral complexes of type [X(OC)2Mn (μ-dppm)2Ir(CO)X'] (X and X' = Cl or Br) are very labile and rapidly decompose to give [Ir(CO)(dppm-PP')2]+ and other (unidentified) products. Treatment of mer,cis-[MnX-(CO)2(dppm-PP')(dppm-P)] with [RhH(CO)(PPh3)3] gave [X(OC)Mn(μ-dppm)2(μ-H)(μ-CO)Rh(CO)] (X = Cl or Br). These heterobimetallic compounds generally showed broad 13P-{1H} resonances for the P nuclei bonded to Mn at ca 20°C due to some coupling with the 55Mn nucleus (I = 100% abundant), but at −30°C these resonances sharpened up due to more rapid quadrupolar relaxation at the lower temperature. NMR and IR data are given.  相似文献   

16.
[Ru(CO)4PMe3] reacts with MeI to give fac-[Ru(CO)3(PMe3)(Me)I]. The latter reacts with PMe3 to give a mixture of the three isomers of cis-bis(trimethylphosphine)-cis-dicarbonyl acetyl iodide [Ru(CO)2(PMe3)2(COMe)I]. Decarbonylation of the mixture gives only the trans-bis(trimethylphosphine)-cis-dicarbonyl methyl iodide complex [Ru(CO)2(PMe3)2MeI], which was also prepared by oxidative addition of MeI to [Ru(CO)3(PMe3)2].  相似文献   

17.
The complexes [ReCl(N2)(PMe2Ph)jtJ. Amer. Chem. Soc.43] and [ReCl(N2)(PMe2Ph)3(pyridine)] react with organic acid halides, RCOCl, to form acylazo- and aroylazo-complexes, [ReCl2(N2COR)(PMe2Ph)3], for which X-ray diffraction studies confirm the formation of the NC bond; the osmium complex [OsCl2(N2)(PEt2Ph)3] does not undergo analogous reactions.  相似文献   

18.
Announcement     
[Ru(2–6-η-bicyclo[5.1.0]octadienyl)(PMe2Ph)3][PF6], formed from the reaction of cyclooctatetraene with [RuH(COD)(PMe2Ph)3][PF6] (COD = cycloocta-1,5-diene), has been characterised spectroscopically from 1J(CH) coupling constants and an X-ray structural analysis; the bicyclic ligand contains an elongated bridging CC bond (1.63 Å).  相似文献   

19.
The reaction between [{Ru(CO)Cl2(PMe2Ph)2}2] and SnBu3(C5H7) in chloroform yields the η3-pentadienyl complex [Ru(CO)Cl(η3-C5H7)(PMe2Ph)2]. The 1H NMR spectra are reported and discussed.  相似文献   

20.
The ruthenium and iron dicarbonyl complexes Ru(MeP(CH2CH2PMe2)2)(CO)2 (1), Ru(MeP(CH2CH2CH2PMe2)2)(CO)2 (2) and Fe(MeP(CH2CH2CH2PMe2)2)(CO)2 (3) bearing strong donor tridentate phosphine ligands were prepared and fully characterised. The structures of the complexes have been established by X-ray diffraction studies. Oxidative addition of MeI to 1-3 proceeds instantaneously at room temperature and affords the corresponding octahedral cationic complexes fac,cis-[RuMe(MeP(CH2CH2PMe2)2)(CO)2]I (5a) and mer,cis-[RuMe(MeP(CH2CH2PMe2)2)(CO)2]I (5b), mer,trans-[MMe(MeP(CH2CH2CH2PMe2)2)(CO)2]I (6a (M=Ru); 7a (M=Fe)) and mer,cis-[MMe(MeP(CH2CH2CH2PMe2)2)(CO)2]I (6b (M=Ru); 7b (M=Fe)), respectively. The triphosphine preferentially adopts a facial arrangement in the case of the ethylene bridged tridentate ligand (5a) and a meridional arrangement in the case of the trimethylene bridged ligand (6a-7b). mer,cis-[RuMe(MeP(CH2CH2CH2PMe2)2)(CO)2]I (6a) undergoes CO insertion to the acetyl complex mer, trans-[Ru(COMe)(MeP(CH2CH2CH2PMe2)2)(CO)2]I (8). Attempts to produce a ketene complex from the deprotonation of 8 were not successful. The acetyl protons in 8 show very low acidity and no reaction occurred when the complex was reacted with bases such as DBU, BEMP (2-tert-Butylimino-2-diethylamino-1,3-dimethyl-perhydro-1,3,2-diazaphosphorine) or LDA.  相似文献   

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