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1.
The reaction of Os3(CO)10(NCMe)2 (1) with an excess of acenaphthylene at room temperature provided the complex Os3(CO)10(μ-H)(μ-η2-C12H7) (2). Compound 2 contains a σ-π coordinated acenaphthyl ligand bridging an edge of the cluster. Compound 2 was converted to the complex Os3(CO)9(μ-H)232-C12H6) (3) when heated to reflux in a cyclohexane solution. Compound 3 contains a triply bridging acenaphthyne ligand. Compound 3 reacts with acenaphthylene again at 160 °C to yield four new cluster complexes: Os4(CO)12422-C12H6) (4); Os2(CO)6(μ-η4-C24H12) (5); Os3(CO)9(μ-H)(μ34-C24H13) (6); and Os2(CO)5(μ-η4-C24H12)(η2-C12H8) (7). All compounds were characterized crystallographically. Compound 4 is a butterfly cluster of four osmium atoms bridged by a single acenaphthyne ligand. Compounds 5 and 7 are dinuclear osmium clusters containing metallacycles formed by the coupling of two equivalents of acenaphthyne. Compound 6 is a triosmium cluster formed by the coupling of an acenaphthyne ligand to an acenapthyl group that is coordinated to the cluster through a combination of σ and π-bonding.  相似文献   

2.
The valence saturated benzothiazolide triosmium cluster [Os3(CO)10(μ-η2-C7H4NS)(μ-H)] (1) reacts with tetramethylthiourea in refluxing toluene to give [Os3(CO)8(μ-η2-C7H4NS)(η2-SCNMe2NMeCH2)(μ-H)2] (5), which exists as a mixture of two isomers in solution, whereas the electron-deficient cluster [Os3(CO)932-C7H4NS)(μ-H)] (2) reacts with tetramethylthiourea in refluxing cyclohexane to give two new compounds [Os3(CO)8(μ-η2-C7H4NS)(η2-SCNMe2NMeCH2)(μ-H)2] (6) and [Os3(CO)9(μ-η2-C7H4NS)(η1-SC(NMe2)2)(μ-H)] (7). In contrast, the reaction of [Os3(CO)932-C7H3(2-CH3)NS)(μ-H)](3) with tetramethylthiourea in refluxing cyclohexane at 81 °C, gives only [Os3(CO)9(μ-η2-C7H3(2-CH3)NS)(η1-SC(NMe2)2)(μ-H)] (8) in 15% yield. Compound 7 converts into 6 in refluxing toluene whereas a similar thermolysis of 8 results non-specific decomposition. All the compounds have been characterized by elemental analysis, IR, 1H NMR and mass spectroscopic data together with single crystal X-ray diffraction analysis for 5 and 7. Both compounds 5 and 6 contain a cyclometallated tetramethylthiourea ligand which is chelating at the rear osmium atom and are structurally very similar. In 5, the benzothiazolide ligand is coordinated to Os3 triangle via the nitrogen lone pair and C(2) carbon atom of the heterocyclic ring whereas in 6 the ligand is coordinated to the Os3 triangle via the nitrogen lone pair and the C(7) carbon atom of carbocyclic ring. In 7 and 8, the tetramethylthiourea ligand is coordinated at an equatorial site of the osmium atom which is also bound to the nitrogen atom of the benzothiazolide ligand.  相似文献   

3.
The reaction between 1-pyrenecarboxaldehyde (C16H9CHO) and the labile triosmium cluster [Os3(CO)10(CH3CN)2] gives rise to the formation of two new compounds by competitive oxidative addition between the aldehydic group and an arene C-H bond, to afford the acyl complex [Os3(CO)10(μ-H)(μ-COC16H9)] (1) and the compound [Os3(CO)10(μ-H) (C16H8CHO)] (2), respectively. Thermolysis of [Os3(CO)10(μ-H)(μ-C16H9CO)] (1) in n-octane affords two new complexes in good yields, [Os3(CO)9(μ-H)2(μ-COC16H8)] (3) and the pyryne complex [Os3(CO)9(μ-H)23112-C16H8)] (4).In contrast, when 1-pyrenecarboxaldehyde reacts with [Ru3(CO)12] only one product is obtained, [Ru3(CO)9(μ-H)23112-C16H8)] (5), a nonacarbonyl cluster bearing a pyrene ligand. All compounds were characterized by analytical and spectroscopic data, and crystal structures for 1, 2, 4 and 5 were obtained.  相似文献   

4.
Treatment of unsaturated [Os3(CO)83-Ph2PCH2P(Ph)C6H4}(μ-H)] (2) with tBuNC at room temperature gives [Os3(CO)8(CNBut)){μ3-Ph2PCH2P(Ph)C6H4}(μ-H)] (3) which on thermolysis in refluxing toluene furnishes [Os3(CO)7(CNBut){μ3-Ph2PCHP(Ph)C6H4}(μ-H)2] (4). Reaction of the labile complex [Os3(CO)9(μ-dppm)(NCMe)] (5) with tBuNC at room temperature affords the substitution product [Os3(CO)9(μ-dppm)(CNBut)] (6). Thermolysis of 6 in refluxing toluene gives 4. On the other hand, the reaction of unsaturated [Os3(CO)932-C7H3(2-Me)NS}(μ-H)] (7) with tBuNC yields the addition product [Os3(CO)9(CNBut){μ-η2-C7H3(2-Me)NS}(μ-H)] (8) which on decarbonylation in refluxing toluene gives unsaturated [Os3(CO)8(CNBut){μ32-C7H3(2-Me)NS}(μ-H)] (9). Compound 9 reacts with PPh3 at room temperature to give the adduct [Os3(CO)8(PPh3)(CNBut){μ-η2-C7H3(2-Me)NS(μ-H)] (10). Compound 8 exists as two isomers in solution whereas 10 occurs in four isomeric forms. The molecular structures of 3, 6, 8, and 10 have been determined by X-ray diffraction studies.  相似文献   

5.
The heteronuclear cluster RuOs3(μ-H)2(CO)13 (4) reacts with refluxing toluene to form the clusters Ru2Os3(μ-H)2(CO)16 (5) RuOs3(CO)9(μ-CO)26-C6H5Me) (6) and Ru2Os3(CO)12(μ-CO)(η6-C6H5Me) (7). Cluster 5 exists as a mixture of five isomers. The inter-relationship among the clusters has also been investigated.  相似文献   

6.
The heteronuclear cluster RuOs3(μ-H)2(CO)13 (1) reacts with indene under thermal activation to afford the novel clusters RuOs3(μ-H)(CO)9(μ-CO)25-C9H7) (3), RuOs3(μ-H)(CO)93522-C9H7) (4) and Ru2Os3(μ-H)(CO)113522-C9H7) (5), the latter two possessing indenyl ligands in the μ3522 bonding mode. Cluster 5 exists as a mixture of two isomers. The inter-relationship among the clusters has also been investigated.  相似文献   

7.
The reaction of the cluster Os3(CO)10(μ-H)(μ-γ-C5H3O2) (1) with a number of alkynes under thermal or visible light irradiation conditions, afforded in most cases the dinuclear complexes Os2(CO)6(μ-γ-C5H3O2)(μ-LH) (L=PhCCPh, tBuCCH, tBuCCMe or EtCCEt) (2) or the trinuclear chain complexes Os3(CO)9(μ-H)(μ-γ-C5H3O2)(μ-RCCHC6H4) (R=H, Ph) (3). In the case of PhCCPh, a new isomer of Os3(CO)8(PhCCPh)2, viz., Os3(CO)8(μ-PhCCPh)(μ-PhCCHC6H4) (7) has been isolated and characterised.  相似文献   

8.
The reaction of the labile compound [Re2(CO)8(CH3CN)2] with trans-1,2-bis(2-pyridyl)ethene (C12H10N2) at room temperature in tetrahydrofuran affords the compounds [Re2(μ:η3-C12H10N2)(CO)8] (1) and the oxidative addition product [Re2(μ-H)(μ:η3-C12H9N2)(CO)7] (2). When the reaction is carried out at temperatures of refluxing tetrahydrofuran, besides compounds 1 and 2, the oxidative addition product [Re2(μ-H)(μ:η4-C12H9N2)(CO)6] (3), the insertion product [Re2(μ:η4-C12H10N2)(CO)8] (4) and [Re2(μ:η6-C24H18N4)(CO)6] (5) are obtained. Compound 5 contains the organic ligand rtct-tetrakis(2-pyridyl)cyclobutandiyl which is derived from a [2 + 2] cycloaddition of 1,2-bis(2-pyridyl)ethene mediated by its coordination to the bimetallic framework. The molecular structures of 1, 2, 4 and 5 were confirmed by X-ray crystallographic studies.  相似文献   

9.
Reaction of Ph2PCC(CH2)5CCPh2 with Os3(CO)10(NCMe)2 affords Os3(CO)10(μ,η2-(Ph2P)2C9H10) (1) and the double cluster [Os3(CO)10]2(μ,η2- (Ph2P)2C9H10)2 (2), through coordination of the phosphine groups. Thermolysis of 1 in toluene generates Os3(CO)7(μ-PPh2)(μ35-Ph2PC9H10) (3) and Os3(CO)8(μ-PPh2)(μ36-Ph2P(C9H10)CO) (4). The molecular structures of 1, 3, and 4 have been determined by an X-ray diffraction study. Both 3 and 4 contain a bridging phosphido group and a carbocycle connected to an osmacyclopentadienyl ring, which are apparently derived from C-P bond activation and C-C bond rearrangement of the dpndy ligand governed by the triosmium clusters.  相似文献   

10.
Reactions of Os3(CO)12 with 1,8-bis(diphenylphosphino)naphthalene (dppn) are described. Crystallographically characterised complexes isolated from a reaction carried out in refluxing toluene are Os3(μ-H)2{μ-PPh2(nap)PPh(C6H4)}2(CO)6 (1), Os3(μ-H){μ3-PPh2(nap)PPh(C6H4)}(CO)8 (2) and Os2(μ-PPh2){μ-PPh2(nap)}(CO)5 (3) (nap=1,8-C10H6), while at r.t. in the presence of ONMe3, only Os3(CO)11{PPh2(1-C10H7)} (4) was isolated. While 1 and 2 contain ligands formed by metallation of a Ph group of dppn, as found also in complexes obtained from dppn and Ru3(CO)12, ligands in 3 and 4 are formed by cleavage of a P-nap bond, not found in the Ru series.  相似文献   

11.
The reaction of [Ru3(CO)12] (1), with indene in refluxing xylene affords [{(η5-C9H7)Ru(CO)2}2] (2), in high yield. An analogous reaction of 1 with 2-phenylindene affords the expected dinuclear complex [{(η5-C9H6Ph)Ru(CO)2}2] (5), and a heptaruthenium cluster [(C9H4Ph)Ru7(μ-H)(μ-CO)2(CO)16] (6). The indenyl ligand in compound 6 exhibits a novel bonding mode in which the benzenoid ring is μ41122 bound to the cluster. Refluxing 1 with bis-indenyl methane affords the dinuclear complex [Ru2(CO)4{μ-(η5-C9H6)2CH2}] (7), which reacts with iodine via Ru-Ru bond cleavage to give [Ru2I2(CO)4{(η5-C9H6)2CH2}] (8).  相似文献   

12.
An overview of the dynamical processes involving the hydrido ligand in triosmium and triruthenium carbonyl clusters is presented. The relationship between the mechanisms of hydride motions and the other ligands in the cluster are discussed for mono- di- and trihydrido-clusters. In addition, the reactivity of the electron deficient 46e? cluster, (μ-H)(μ32-C9H5N-4-CHO)Os3(CO)9 (1) with hydrogen is reported. The reaction gives two isomeric trihydrido clusters, H(μ-H)232-C9H5N-4-CHO)Os3(CO)8 (2) and (μ-H)332-C9H5N-4-CHO)Os3(CO)8 (2′) in low yield along with trace amounts of other hydrido clusters. Reaction of the inseparable mixture of 2 and 2′ with triphenylphosphine at ambient temperatures gives two related addition products H(μ-H)2(μ-η2-C9H5N-4-CHO)Os3(CO)8PPh3 (3) and (μ-H)3(μ-η2-C9H5N-4-CHO)Os3(CO)8PPh3 (3′) in a 5:1 ratio. These results contrast with the previously reported trihydrido-derivatives of triosmium μ32-imidoyl clusters where only analogues of 2 and 3 are obtained. Clusters 2 and 2′ are rigid on the NMR time scale while 3 exhibits dynamical behavior in the temperature range of ?50 to +25 °C. Cluster 3′ is stereochemically rigid in this temperature range. The dynamical behavior of 3 involves the exchange of the terminal and bridging hydrides coupled with tripodal motion of the phosphine substituted osmium atom, a process virtually identical to previously reported trihydrides of the μ32-imidoyl triosmium clusters.  相似文献   

13.
Reaction of [Mn2(CO)9(NCMe)] with tetrahydropyrimidine-2-thione (thpymSH) at 25 °C furnishes the mono- and dinuclear complexes [Mn(CO)411-SCNHC3H6NCO)] (2) and [Mn2(CO)6(μ-thpymS)2] (1), respectively. Carbon-nitrogen coupling is observed in compound 2 resulting in the formation of κ11-SCNHC3H6NCO ligand while compound 1 adopts a centrosymmetric structure. Reaction of 1 with [Os3(CO)10(NCMe)2] at 80 °C affords the mixed Mn-Os cluster [MnOs3(CO)133-thpymS)] (3) which possesses a butterfly skeleton of four metal atoms whereas with Ru3(CO)12 at 110 °C gives the mixed Mn-Ru complex [MnRu3(CO)144-S)(κ11-thpym)] (4). In contrast, treatment of 1 with Fe3(CO)12 at 80 °C furnishes two triiron complexes [Fe3(CO)93-S)(μ311-C4H6N2)] (5) and [Fe3(CO)83-S)21-C4H8N2)] (6). The former also results from the direct reaction of thpymSH with Fe3(CO)12 and reacts with H2S to afford 6. The molecular structures of all these new complexes have been determined by X-ray diffraction studies.  相似文献   

14.
Addition of tri(2-furyl)phosphine, PFu3, to [Os3(CO)10(μ-H)2] at room temperature gives [HOs3(CO)10(PFu3)(μ-H)] (1), while in refluxing toluene the same reactants afford [Os3(CO)93-PFu2(C4H2O)}(μ-H)] (2) resulting from orthometallatation of a furyl ring. Reaction of PFu3 with [Os3(CO)10−n(NCMe)n] (n = 0, 1, 2) affords the substituted clusters [Os3(CO)12−n(PFu3)n] (n = 1-3) (3-5), the phosphine ligands occupying equatorial position in all cases. Heating [Os3(CO)11(PFu3)] (3) in refluxing octane gives [Os3(CO)93-PFu)(μ32-C4H2O)] (6) which results from both carbon-hydrogen and carbon-phosphorus bond activation and contains both μ32-furyne and furylphosphinidene ligands. All new clusters have been characterized by spectroscopic methods together with single crystal X-ray diffraction for 2, 3 and 6.  相似文献   

15.
Reaction of 1,3,5-trimethyl-1,3,5-triazacyclohexane [(MeNCH2)3] with Os3(CO)12 in refluxing toluene results in C-H and C-N bond activation of the (MeNCH2)3 ligand to afford three amidino cluster complexes (μ-H)Os3(CO)10[μ,η2-CH(NMe)2] (1), (μ-H)Os3(CO)932-CH(NMe)2] (2), and Os2(CO)6[μ,η2-CH(NMe)2]2 (3). The controlled experiments show that thermolysis of 1 yields 2, and heating 2 in the presence of (MeNCH2)3 ligand produces 3. The molecular structures of 1 and 3 have been determined by an X-ray diffraction study.  相似文献   

16.
Treatment of the labile compound [Os3(CO)10(CH3CN)2] with 2,3-bis(2-pyridyl)pyrazine (C14H10N4) in dichloromethane at room temperature gave the cluster [Os3(C14H10N4)(CO)10] (1), which contains the chelating ligand co-ordinated axially through one of the pyridine rings and equatorially through a pyrazine nitrogen atom while one of the pyridine rings remains unco-ordinated. Thermolysis of 1 leads to loss of CO and yields two structural isomers of [Os3(μ-H)(μ,η3-C14H9N4)(CO)9] (2) and (3). Isomer 2 contains an orthometallated 2-pyridyl group and a co-ordinated 2-pyridyl which is not orthometallated. A seven-membered chelate ring is formed and the pyrazine ring is uncoordinated. On the other hand, isomer 3 contains a 2-pyridyl-1,4-pyrazine fragment metallated in the pyrazine ring to form a five-membered chelate ring with the one pyridine ring remaining unco-ordinated. The molecular structures of 1-3 were confirmed by X-ray crystallographic studies.  相似文献   

17.
The clusters [Ru4(μ-CO)(CO)1041212-C5H6)2] (1), [Ru4(CO)8441113-C10H12)(μ3321-C5H6)] (2) and [Ru4(CO)10441131-C15H16)] (3) have been prepared from the reaction of [H4Ru4(CO)12] with 1-penten-3-yne. This reaction is observed to proceed with dimerization and trimerization through the triple bonds. The products were characterized spectroscopically by 1H- and 13C-NMR. X-ray crystal structures of compounds 1 and 2 are also described.  相似文献   

18.
The synthesis and properties of heterobimetallic Ti-M complexes of type {[[Ti](μ-η12-CCSiMe3)][M(μ-η12-CCSiMe3)(CO)4]} (M = Mo: 5, [Ti] = (η5-C5H5)2Ti; 6, [Ti] = (η5-C5H4SiMe3)2Ti; M = W: 7, [Ti] = (η5-C5H5)2Ti; 8, [Ti] = (η5-C5H4SiMe3)2Ti) and {[Ti](μ-η12-CCSiMe3)2}MO2 (M = Mo: 13, [Ti] = (η5-C5H5)2Ti; 14, [Ti] = (η5-C5H4SiMe3)2Ti). M = W: 15, [Ti] = (η5-C5H5)2Ti; 16, [Ti] = (η5-C5H4SiMe3)2Ti) are reported. Compounds 5-8 were accessible by treatment of [Ti](CCSiMe3)2 (1, [Ti] = (η5-C5H5)2Ti; 2, [Ti] = (η5-C5H4SiMe3)2Ti) with [M(CO)5(thf)] (3, M = Mo; 4, M = W) or [M(CO)4(nbd)] (9, M = Mo; 10, M = W; nbd = bicyclo[2.2.1]hepta-2,5-diene), while 13-16 could be obtained either by the subsequent reaction of 1 and 2 with [M(CO)3(MeCN)3] (11, M = Mo; 12, M = W) and oxygen, or directly by oxidation of 5-8 with air. A mechanism for the formation of 5-8 is postulated based on the in-situ generation of [Ti](CCSiMe3)((η2-CCSiMe3)M(CO)5), {[Ti](μ-η12-CCSiMe3)2}-M(CO)4, and [Ti](μ-η12-CCSiMe3)((μ-CCSiMe3)M(CO)4) as a result of the chelating effect exerted by the bis(alkynyl) titanocene fragment and the steric constraints imposed by the M(CO)4 entity.The molecular structure of 5 in the solid state were determined by single crystal X-ray diffraction analysis. In doubly alkynyl-bridged 5 the alkynides are bridging the metals Ti and Mo as a σ-donor to one metal and as a π-donor to the other with the [Ti](CCSiMe3)2Mo core being planar.  相似文献   

19.
Reaction of the iridium tetracarbonylate [PPN][Ir(CO)4] (1a) with triphenylcyclopropenyl tetrafluoroborate [C3Ph3][BF4] afforded two dinuclear species Ir2(CO)4(μ,η12-C3Ph3)(μ,η23-C3Ph3) (2) and Ir2(CO)4(μ,η44-C6Ph6) (3a) resulting from the ring opening and in the latter case, coupling of the resulting acyclic, propenyl ligands. The analogous reaction with [PPN][Rh(CO)4] (1b) afforded only the rhodium analogue for 3a.  相似文献   

20.
The reaction of the cluster Os3(CO)10(μ-H)(μ-γ-C5H3O2) (1), with DMAD under UV irradiation afforded three isomers of the monosubstituted product, Os3(CO)9(μ-γ-C5H3O2)(μ3-MeO2CCHCCO2Me) (2), and a disubstituted product, Os3(CO)8(μ-γ-C5H3O2)(μ3-MeO2CCHCCO2Me)(μ-MeO2CCCCO2Me) (3). The formation of 3 suggests that flipping of the O-heterocycle can occur.  相似文献   

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