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1.
Substitution reaction of fac-[FeII(CN)2(CO)3I] with triphenylphosphine (PPh3) produced mono phosphine substituted complex cis-cis-[FeII(CN)2(CO)2(PPh3)I]. Crystal structure of the product showed that carbonyl positioned trans- to iodide was replaced by PPh3. The substitution reaction was monitored by quantitative infrared spectroscopic method, and the rate law for the substitution reaction was determined to be rate = k[[FeII(CN)2(CO)2(PPh3)I]][PPh3]. Transition state enthalpy and entropy changes were obtained from Eyring equation k = (kBT/h)exp(−ΔH/RT + ΔS/R) with ΔH = 119(4) kJ mol−1 and ΔS = 102(10) J mol−1 K−1. Positive transition state entropy change suggests that the substitution reaction went through a dissociative pathway.  相似文献   

2.
Thiocarbonate ruthenium complexes of the form CpRu(L)(L′)SCO2R (L = L′ = PPh3 (1), 1/2 dppe (2), L = PPh3, L′ = CO (3); R = Et (a), Bun (b), C6H5 (c), 4-C6H4NO2 (d)) have been synthesized by the reaction of the corresponding sulfhydryl complexes, CpRu(L)(L′)SH, with chloroformates, ROCOCl, at low temperature. The bis(triphenylphosphine) complexes 1 can be converted to 3 under CO atmosphere. The crystal structures of CpRu(PPh3)2SCO2Bun (1b), CpRu(dppe)SCO2Bun (2b), and CpRu(PPh3)(CO)SCO2Bun (3b) are reported.  相似文献   

3.
The reactions of [Pt2(μ-S)2(PPh3)4] with α,ω-dibromoalkanes Br(CH2)nBr (n = 4, 5, 6, 8, 12) gave mono-alkylated [Pt2(μ-S){μ-S(CH2)nBr}(PPh3)4]+ and/or di-alkylated [Pt2(μ-S(CH2)nS}(PPh3)4]2+ products, depending on the alkyl chain length and the reaction conditions. With longer chains (n = 8, 12), intramolecular di-alkylation does not proceed in refluxing methanol, with the mono-alkylated products [Pt2(μ-S){μ-S(CH2)nBr}(PPh3)4]+ being the dominant products when excess alkylating agent is used. The bridged complex [{Pt2(μ-S)2(PPh3)4}2{μ-(CH2)12}]2+ was accessible from the reaction of [Pt2(μ-S)2(PPh3)4] with 0.5 mol equivalents of Br(CH2)12Br. [Pt2(μ-S){μ-S(CH2)4Br}(PPh3)4]+ can be cleanly isolated as its BPh4 salt, but undergoes facile intramolecular di-alkylation at −18 °C, giving the known species [Pt2(μ-S(CH2)4S}(PPh3)4]2+. The reaction of I(CH2)6I with [Pt2(μ-S)2(PPh3)4] similarly gives [Pt2(μ-S){μ-S(CH2)6I}(PPh3)4]+, which is fairly stable towards intramolecular di-alkylation once isolated. These reactions provide a facile route to ω-haloalkylthiolate complexes which are poorly defined in the literature. X-ray crystal structures of [Pt2(μ-S){μ-S(CH2)5Br}(PPh3)4]BPh4 and [Pt2(μ-S(CH2)5S}(PPh3)4](BPh4)2 are reported, together with a study of these complexes by electrospray ionisation mass spectrometry. All complexes fragment by dissociation of PPh3 ligands, and the bromoalkylthiolate complexes show additional fragment ions [Pt2(μ-S){μ-S(CH2)n−2CHCH2}(PPh3)m]+ (m = 2 or 3; m ≠ 4), most significant for n = 4, formed by elimination of HBr.  相似文献   

4.
Clusters [MoS4Ag3(PPh3)3{S2P(OPri)2}] (1), [WS4Ag3(PPh3)3{S2P(OPri)2}] (2) and [WOS3Ag3(PPh3)3{S2P(OPri)2}] (3) were synthesized by the reaction of (NH4)2MoS4/(NH4)2WS4, (NH4)2WOS3 with Ag[S2P(OPri)2]. Their structures have been characterized by X-ray diffraction. The clusters consist of a distorted tetrahedral MS4 (or MOS3) (M = Mo, W) with three Ag atoms and three sulfur atom bridges (Fig. 1), and resemble roughly that of cubane-like clusters. The nonlinear optical (NLO) properties were studied with an 8 ns pulsed laser at 532 nm. Its optical response to the incident light exhibits good optical absorptive and refractive effects, with α2 = 1.56 × 10−10 m W−1, n2 = 3.87 × 10−17 m2 W−1 for cluster 1; α2 = 1.33 × 10−10 m W−1n2 = 6.52 × 10−17 m2 W−1for cluster 2; and α2 = 2.54 × 10−10 m W−1, n2 = 4.07 × 10−17 m2 W−1 for cluster 3 for a 1.56 × 10−4 mol dm−3 CH2Cl2 solution.  相似文献   

5.
Two isomers of the N,O-coordinated acetylpyrrolyl complex [Ru(PPh3)2(CO)(NC4H3C(O)CH3)H] {cis-N,H (1) and trans-N,H (2)} have been prepared as models for catalytic intermediates in the Murai reaction. Complex 2 isomerises to 1 upon heating via a dissociative pathway (ΔH = 195 ± 41 kJ mol−1; ΔS = 232 ± 62 J mol−1 K−1); the mechanism of this process has been modeled using density functional calculations. Complex 2 displays moderate catalytic activity for the Murai coupling of 2′-methylacetophenone with trimethylvinylsilane, but 1 proved to be catalytically inactive under the same conditions.  相似文献   

6.
The metalloligand [Pt2(μ-S)2(PPh3)4] reacts with Bi(S2CNEt2)3 or Bi(S2COEt)3 in methanol to produce the orange cationic adducts [Pt2(μ-S)2(PPh3)4Bi(S2CNEt2)2]+ and [Pt2(μ-S)2(PPh3)4Bi(S2COEt)2]+, respectively, isolated as their hexafluorophosphate salts. An X-ray structure determination on [Pt2(μ-S)2(PPh3)4Bi(S2CNEt2)2]PF6 reveals the presence of a six-coordinated bismuth centre with an approximately nido-pentagonal bipyramidal coordination geometry. Fragmentation pathways for both complexes have been probed using electrospray ionisation mass spectrometry; ions [Pt2(μ-S)2(PPh3)2Bi(S2CXEtn)2]+ (X = O, n = 1, X = N, n = 2) are formed by selective loss of two PPh3 ligands, and at higher cone voltages the species [(Ph3P)PtS2Bi]+ is observed. Ions formed by loss of CS2 are also observed for the xanthate but not the dithiocarbamate ions.  相似文献   

7.
Heteroleptic triphenylphosphine carbonyl palladium clusters of different nuclearities were prepared under mild conditions by only varying the amount of ligand (PPh3) used in the synthesis: three different clusters were successfully isolated after CO bubbling in a solution of [Pd2(dba)3] (dba = dibenzylideneacetone) with 3, 1 or 0.5 equiv of PPh3, which led, respectively, to [Pd4(CO)5(PPh3)4] (1), [Pd10(CO)12(PPh3)6] (2) and [Pdn(CO)x(PPh3)y] (3) (n ≈ 24). The molecular structures of compounds 1 and 2 were determined by X-ray crystallography. The metal cores in these compounds were shown to consist in a butterfly for 1 and a bridged octahedron for 2. Compound 3 was shown to be at the boundary between molecular clusters and colloidal particles with tentative formulation arising from characterization data. These three clusters and the known [Pd10(CO)12(PBu3)6] and [Pd12(CO)15(PBu3)7] were submitted to NaBH4 reduction. The Pd4 cluster 1 did not react. The colloidal Pdn species led to no isolable product. By contrast, the two Pd10 and the Pd12 clusters led to reduction products, isolated as salts. In the case of the reduced Pd12 cluster, its structure was resolved by X-ray crystallography: the metal core consists of a face-capped octahedron. The reduced species reacted readily with Au(PPh3)+, confirming their anionic nature.  相似文献   

8.
Benzophenone imine [M(η1-NHCPh2)(CO)nP5-n]BPh4 [M = Mn, Re; n = 2, 3; P = P(OEt)3, PPh(OEt)2, PPh2OEt, PPh3] complexes were prepared by allowing triflate M(κ1-OTf)(CO)nP5-n compounds to react with an excess of the imine. Hydride-imine [MH(η1-NHCPh2)P4]BPh4 (M = Ru, Os), triflate-imine [Os(κ1-OTf)(η1-NHCPh2)P4]BPh4 and bis(imine) [Ru(η1-NHCPh2)2P4](BPh4)2 [P = P(OEt)3] derivatives were also prepared. The complexes were characterized spectroscopically (IR, 1H, 31P, 13C NMR) and a geometry in solution was also established. Hydride-benzophenone imine [IrHCl(η1-NHCPh2)L(PPh3)2]BPh4and [IrHCl(η1-NHCPh2)L(AsPh3)2]BPh4 [L = P(OEt)3 and PPh(OEt)2] complexes were prepared by reacting hydride IrHCl2L(PPh3)2 and IrHCl2L(AsPh3)2 precursors with an excess of imine. Dihydride IrH21-NHCPh2)(PPh3)3 complex was also obtained and a geometry in solution was proposed.  相似文献   

9.
The slight differences in the donor capabilities of PPhnPy3−n (n = 0-3) could be measured directly in the equilibrium of phosphine replacement reaction on (η5-C5H5)Fe(CO)2-phosphine complexes, taking advantage of the radical pathway to establish equilibrium rapidly. The simultaneous determination of equilibrium constants is done in a single experiment. The donor capability increases in the order PPh3 < PPh2Py < PPhPy2 < PPy3 with quantified -affinity scales at 1, 4.90, 11.0, and 20.3, respectively.  相似文献   

10.
The new trans-hyponitrite derivative complex [Ru2(CO)4(μ-PtBu2)(μ-dppm)(μ-η2-ONNOMe)] (2, dppm = Ph2PCH2PPh2) was prepared by deprotonation of [Ru2(CO)4(μ-H)(μ-PtBu2)(μ-dppm)(μ-η2-ONNOMe)][BF4] (1) with the base DBU (1.8-diazabicyclo[5.4.0]undec-7-ene). The latter complex salt has been obtained in an improved synthesis starting from the trans-hyponitrite complex [Ru2(CO)4(μ-H)(μ-PtBu2)(μ-dppm)(μ-η2-ONNO)]. Compound 2 has been characterized by spectroscopic methods as well as by X-ray diffraction and represents the first neutral complex bearing a deprotonated monoester of the hyponitrous acid as the bridging ligand.  相似文献   

11.
Some novel cyclic-dioxycarbene derivatives of general formula (L = PtBu3, n = 1 (2), PPh3: n = 1 (3), 2 (4)) and (L-L = PPh2PCH2PPh2, n = 1 (5), norbornadiene, n = 1 (6) and 1,5-cyclooctadiene, n = 1 (7), 2 (8)) have been obtained by reaction of oxirane with the tetrairidium cluster derivatives [Ir4(CO)11(L)] and [Ir4(CO)10(L-L)] in the presence of bromide ion as catalyst. Elemental analysis, IR, and NMR spectra (1H, 31P{1H}, 13C{1H}), and for compounds 2 and 5 also the X-ray crystal structures, were carried out for their characterisation. All the derivatives have 3 edge-bridging CO’s on the basal face of the iridium tetrahedron with non-CO ligands in axial and/or radial positions. For the mixed-ligand cluster compounds, two or three stereoisomers were observed in solution by 1H, 31P and 13C NMR spectroscopies at low temperature. All these clusters are fluxional at room temperature.  相似文献   

12.
Mixed-ligand complexes [ReBr(CO)2(CNR)nL3−n] (1-4) [R = 4-CH3OC6H4, 4-CH3C6H4, C(CH3)3; L = P(OEt)3, PPh(OEt)2; n = 1, 2] were prepared by allowing carbonyl compounds [ReBr(CO)4L] and [ReBr(CO)3L2] to react with an excess of isocyanide. Treatment of these bromocomplexes [ReBr(CO)2(CNR)nL3−n] with SnCl2 · 2H2O yielded the trichlorostannyl derivatives [Re(SnCl3)(CO)2(CNR)nL3−n] (5-8). Trihydridestannyl complexes [Re(SnH3)(CO)2(CNR)nL3−n] (9-12) were prepared by allowing trichlorostannyl compounds 5-8 to react with NaBH4 in ethanol. The trimethylstannyl derivative [Re(SnMe3)(CO)2(CNC6H4-4-CH3){PPh(OEt)2}2] (13b) was also prepared by treating [Re(SnCl3)(CO)2(CNC6H4-4-CH3){PPh(OEt)2}2] with an excess of MgBrMe in diethylether. Reaction of the tin trihydride complexes [Re(SnH3)(CO)2(CNR)nL3−n] (9-12) with CO2 (1 atm) led to dinuclear OH-bridging bis(formate) derivatives [Re{Sn(OC(H)O)2(μ-OH)}(CO)2(CNR)nL3−n]2 (14, 15). The complexes were characterised spectroscopically (IR, 1H, 31P, 13C, 119Sn NMR) and by X-ray crystal structure determination of [Re(SnH3)(CO)2{CNC(CH3)3}{PPh(OEt)2}2] (10b).  相似文献   

13.
Imidazole-2-thiol derivatives H2L1-3 (H2L1 = 1H-benzoimidazole-2-thiol, H2L2 = 5-methyl-1H-benzoimidazole-2-thiol, and H2L3 = 1H-imidazole-2-thiol) act as neutral monodentate ligands in a number of technetium and rhenium complexes. Disubstituted M(V) (M = Tc, Re) complexes of the type [AsPh4]{[MOCl2(H2Ln)2(H2O)]Cl2} are formed when [MOCl4] react with H2L1-3 in 1:2 stoichiometric ratio. Single crystal X-ray structure determinations were carried out on [AsPh4]{[TcOCl2(H2L1)2(H2O)]Cl2}. The coordination sphere is pseudo-octahedral in which the sulfur atoms of two ligands sit in the equatorial plane and a water molecule is in trans to the TcO multiple bond. All the complexes react with an excess of the corresponding ligand to form tetrasubstituted cationic species {[MO(H2Ln)4]Cl3}. These complexes can be also isolated by reaction of [MOCl4] with an excess of ligand. No complex is obtained with benzothiazole-2-thiol (HL4) and benzoxazole-2-thiol (HL5). Ligand exchange reactions of [ReOCl3(PPh3)2] with HL4,5 have also been investigated. Treating the oxo-precursor with HL4 no product is isolated, while with HL5 the chelate oxo-compound [ReOCl2(L5)(PPh3)] is formed as two isomers. An interesting organometallic complex of Re(IV) [ReCl3(L5∗)(PPh3)2] is obtained when a slight excess of HL5 reacts with [ReOCl3(PPh3)2] in refluxing benzene solution and in air. Geometry about the Re atom is approximately octahedral in which the equatorial plane contains three Cl atoms and the carbon atom of the benzoxazole ligand anion, the apical positions are occupied by two PPh3. The reaction with O-ethyl S-hydrogen p-tolyl carbonothioimidate HL6 which contains the same heteroatoms of HL5 does not form an organometallic species, but forms the chelate oxo-Re(V) complex [ReOCl2(L6)(PPh3)]. The solid-state structure has been authenticated by X-ray crystallography.  相似文献   

14.
New silver(I) acylpyrazolonate derivatives [Ag(Q)], [Ag(Q)(PR3)]2 and [Ag(Q)(PR3)2] (HQ = 1-R1-3-methyl-4-R2(CO)pyrazol-5-one, HQBn = R1 = C6H5, R2 = CH2C6H5; HQCHPh2 = R1 = C6H5, R2 = CH(C6H5)2; HQnPe = R1 = C6H5, R2 = CH2C(CH3)3; HQtBu = R1 = C6H5, R2 = C(CH3)3; HQfMe = R1 = C6H4-p-CF3, R2 = CF3; HQfEt = R1 = C6H5, R2 = CF2CF3; R = Ph or iBu) have been synthesized and characterized in the solid state and solution. The crystal structure of 1-(4-trifluoromethylphenyl)-3-methyl-5-pyrazolone, the precursor of proligand HQfMe and of derivatives [Ag(QnPe)(PPh3)2] and [Ag(QnPe)(PiBu3)]2 have been investigated. [Ag(QnPe)(PPh3)2] is a mononuclear compound with a silver atom in a tetrahedrally distorted AgO2P2 environment, whereas [Ag(QnPe)(PiBu3)]2 is a dinuclear compound with two O2N-exotridentate bridging acylpyrazolonate ligands connecting both silver atoms, their coordination environment being completed by a phosphine ligand.  相似文献   

15.
The pentagonal bipyramidal high-spin iron(II) complex, [(TPA2C(O)NHtBu)Fe(CF3SO3)]+, is shown to exhibit a high-anisotropy ground state, with fits to dc magnetization data providing an axial zero-field splitting parameter of D = − 7.9 cm−1. The utility of this compound as a building unit is demonstrated, as its reaction with [ReCl4(CN)2]2− affords the cyano-bridged dinuclear cluster (TPA2C(O)NHtBu)FeReCl4(CN)2. dc magnetic susceptibility measurements reveal intracluster ferromagnetic exchange interactions between FeII and ReIV centers, with J = +3.0 cm−1, giving rise to a spin ground state of S = 7/2. Moreover, fits to dc magnetization data obtained for the FeRe cluster show the presence of strong axial anisotropy, with D = −2.3 cm−1. Finally, variable-frequency ac susceptibility measurements reveal the onset of slow magnetic relaxation at low temperature, suggesting that the FeRe cluster is a single-molecule magnet.  相似文献   

16.
Reaction of [Mn(NCMe)3(CO)3][PF6] with Li3[7-NHBut-nido-7-CB10H10] in THF (THF = tetrahydrofuran) affords the twelve-vertex manganacarborane dianion [1-NHBut-2,2,2-(CO)3-closo-2,1-MnCB10H10]2−, isolated as the bis-[N(PPh3)2]+ salt (5a). This species reacts with {Pt(dppe)}2+ (dppe = Ph2PCH2CH2PPh2) to afford the bimetallic complex [1-NH2But-2,3-{Pt(dppe)}-2,2,2-(CO)3-closo-2,1-MnCB10H9] (7) which has an Mn-Pt bond. In contrast, with {Cu(PPh3)}+ the anion of 5a yields a CuMnCu trimetallic compound [1-{NH(But)Cu(PPh3)}-2,3,7-{Cu(PPh3)}-3,7-(μ-H)2-2,2,2-(CO)3-closo-2,1-MnCB10H8] (8) in which one of the Cu centers is bonded to Mn, whilst the other is attached to the pendant NHBut group. Upon treatment with Ag+, compound 5a is oxidized giving the very unusual Mn(III)-carbonyl complex [1,2-μ-NHBut-2,2,2-(CO)3-closo-2,1-MnCB10H10] (9a) in which the carborane ligand formally acts as an eight-electron donor to manganese. The novel structural features of compounds 7, 8, and 9a have been confirmed by X-ray diffraction studies.  相似文献   

17.
Cytidine (cyt) and adenosine (ado) react with cis-[L2Pt(μ-OH)]2(NO3)2 (L = PMe3, PPh3) in various solvents to give the nucleoside complexes cis-[L2Pt{cyt(− H),N3N4}]3(NO3)3 (L = PMe3, 1),cis-[L2Pt{cyt(− H),N4}(cyt,N3)]NO3 (L = PPh3, 2), cis-[L2Pt{ado(− H),N1N6}]2(NO3)2 (L = PMe3, 3) and cis-[L2Pt{ado(− H),N6N7}]NO3 (L = PPh3, 4). When the condensation reaction is carried out in solution of nitriles (RCN, R = Me, Ph) the amidine derivatives cis-[(PPh3)2PtNH=C(R){cyt(− 2H)}]NO3 (R = Me, 5a; R = Ph, 5b) and cis-[(PPh3)2PtNH=C(R){ado(− 2H)}]NO3 (R = Me, 6a: R = Ph, 6b) are quantitatively formed. The coordination mode of these nucleosides, characterized in solution by multinuclear NMR spectroscopy and mass spectrometry, is similar to that previously observed for the nucleobases 1-methylcytosine (1-MeCy) and 9-methyladenine (9-MeAd). The cytotoxic properties of the new complexes, and those of the nucleobase analogs, cis-[(PPh3)2PtNH=C(R){1-MeCy(− 2H)}]NO3 (R = Me, 7a: R = Ph, 7b), cis-[(PPh3)2PtNH=C(R){9-MeAd(− 2H)}]NO3 (R = Me, 8a: R = Ph, 8b) have been investigated in a wide panel of human cancer cells. Interestingly, whereas the Pt(II) nucleoside complexes (1-4) did not show appreciable cytotoxicity, the corresponding amidine derivatives (7a, 7b, 8a, 8b, 5b, and 6b) exhibited a significant in vitro antitumor activity.  相似文献   

18.
The potentials of a series of one-electron oxidation and reduction reactions have been determined for manganese group half-sandwich complexes of the tricarbadecaboranyl ligand PhC3B7H9 and the penta-organo fullerene ligand C60Bn2PhH2 (Bn = benzyl). The anodic processes were studied in CH2Cl2 and the cathodic processes were studied in both CH2Cl2 and THF, the supporting electrolyte being [NBu4][B(C6F5)4]. The manganese complex Mn(CO)2(PMe3)(PhC3B7H9) (1) is a member of a three-electron transfer series which includes oxidation to 1+ (0.51 V versus ferrocene) and successive reductions to 1 (−1.66 V) and 12− (−1.77 V). Both the oxidation and reduction of the closely-related complex Mn(CO)2(PPh3)(PhC3B7H9) (2) are chemically irreversible under slow-scan cyclic voltammetry conditions. The rhenium complex Re(CO)2(PPh3)(PhC3B7H9) (3) oxidizes (E1/2 = 0.82 V versus ferrocene) to a radical cation which, unlike its cyclopentadienyl analogue, shows no evidence of dimerization. Oxidation of the fullerene-based complex Re(CO)3(C60Bn2PhH2) is more facile than that of its cyclopentadienyl analogue, in contrast to previous findings in this class of metal-fullerene derivatives. An electrochemical ligand factor, EL, of 0.63 is calculated for the PhC3B7H9 ligand in manganese group half-sandwich complexes.  相似文献   

19.
A series of aryldiazenido polyoxomolybdates of the type (nBu4N)2[Mo5O13(OMe)4(NNAr){Na(MeOH)}] (Ar = C6F5, 1; Ar = O2N-o-C6H4, 2; Ar = O2N-m-C6H4, 3; Ar = O2N-p-C6H4, 4a; Ar = (O2N)2-o,p-C6H3, 5) have been obtained by controlled degradation of the parent compounds (nBu4N)3[Mo6O18(NNAr)] with NaOH in methanol. They have been characterized by elemental analysis and UV-Vis and IR spectroscopy. In addition, 4a has been characterized by 95Mo NMR spectroscopy and the crystal structure of (nBu4N)2[Mo5O13(OMe)4(NNC6H4-p-NO2){Na(H2O))]·H2O (4b) has been determined by X-ray diffraction. The molecular structure of the anion of 4b features a lacunary Lindqvist-type anion [Mo5O13(OMe)4(NNC6H4-p-NO2)]3− interacting with a sodium cation through the four terminal axial oxygen atoms. The 1:1 sodium complexes react with BaCl2 and BiCl3 to yield 2:1 complexes which have been isolated as (nBu4N)4[Ba{Mo5O13(OMe)4(NNAr)}2] (Ar = C6F5, 6; Ar = O2N-p-C6H4, 7) and (nBu4N)3[Bi{Mo5O13(OMe)4(NNAr)}2] (Ar = C6F5, 8; Ar = O2N-p-C6H4, 9). X-ray crystallography analysis of 9·Me2CO has shown that the tetradentate [Mo5O13(OMe)4(N2C6H4-p-NO2)]3− anions provide a square-antiprismatic environment for Bi. In contrast, IR spectroscopy provides evidence for a square-prismatic environment of Ba in 6 and 7. In acetonitrile-methanol mixed solvent, [Mo5O13(OMe)4(NNAr)]3− and [PW11O39]7−, generated in situ by alkaline degradation of their respective parents, [Mo6O18(NNAr)]3− and [PW12O40]3−, react together to give the Keggin-type diazenido compounds (nBu4N)4[PW11O39(MoNNAr)] (Ar = O2N-o-C6H4, 10; Ar = O2N-m-C6H4, 11; Ar = O2N-p-C6H4, 12), which have been characterized by 31P and 183W NMR spectroscopy.  相似文献   

20.
Flash photolysis with time-resolved infrared (TRIR) spectroscopy was used to elucidate the photochemical reactivity of the hydroformylation catalyst precursor Co2(CO)6(PMePh2)2. Depending on reaction conditions, the net products of photolysis varied significantly. A model is presented that accounts for the net reactivity with two initial photoproducts, the 17-electron species Co(CO)3(PMePh2) and the coordinatively unsaturated dimer Co2(CO)5(PMePh2)2. No evidence was found for photochemical formation of Co2(CO)6(PMePh2). Time-resolved spectroscopic studies allowed for the direct observation of transient species and for kinetics studies of certain reactions; for example, the reactions of Co(CO)3PMePh2 with CO and with PMePh2 gave the respective rate constants 1.5 × 105 and 1.2 × 107 M−1 s−1, while the analogous reactions with Co2(CO)5(PMePh2)2 gave the rate constants of 2.6 × 106 M−1 s−1 and 3.9 × 107 M−1 s−1.  相似文献   

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