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1.
Treatment of [Os3(CO)73-S)2(μ-dppm)] (1) with Me3NO in toluene at 80 °C affords the trinuclear cluster [Os3(CO)63-S)2(NMe3)(μ-dppm)] (2) and the hexanuclear cluster [Os6(CO)123-S)4(μ-dppm)2] (3) in 30% and 51% yields, respectively. The reaction of 1 with [Os3(CO)10(MeCN)2] in refluxing benzene at 80 °C gives the hexanuclear cluster [Os6(CO)143-S)2(μ-dppm)] (4) in 15% yield. Compound 2 reacts with CO, PPh3 and P(OMe)3 at room temperature to give 1, [Os3(CO)63-S)2(μ-dppm)(PPh3)] (5) and [Os3(CO)63-S)2(μ-dppm){P(OMe)3}] (6), respectively; in high yields indicating that the NMe3 ligand is weakly bound. Compound 1 reacts with PPh3 in presence of Me3NO to afford 5, 2 and 3 in 53%, 6% and 18% yields, respectively, whereas with P(OMe)31 gives only 6 in 84% yield. Compound 3 reacts with CO at 98 °C to regenerate 1 by the cleavage of the three unsupported osmium-osmium bonds. The molecular structures of 4 and 6 have been unambiguously determined by single crystal X-ray diffraction studies. The hexanuclear compound 3 appears to be a64-electron butterfly core with four triply bridging sulfido ligands and two bridging dppm ligands based on the spectroscopic and analytical data. The metal core of 4 can be described as a central tetrahedral array capped on two faces with two additional osmium atoms. The triply bridging sulfido ligands face cap the two tetrahedral arrays formed by metal capping of the two faces of the central tetrahedron. The dppm ligand bridges one edge of one of the external tetrahedral arrays. Compounds 5 and 6 are formed by the displacement of equatorial carbonyl group of 1 by a PPh3 and P(OMe)3 ligand respectively and their structures are comparable to that of 1.  相似文献   

2.
Reaction of [Ru3(CO)10(μ-dppm)] (1) with H2S at 66 °C affords high yields of the sulfur-capped dihydride [Ru3(CO)7(μ-H)2(μ-dppm)(μ3-S)] (2), formed by oxidative-addition of both hydrogen-sulfur bonds. Hydrogenation of [Ru3(CO)7(μ-dppm)(μ3-CO)(μ3-S)] (3) at 110 °C also gives 2 in similar yields, while hydrogenation of [Ru3(CO)7(μ-dppm)(μ3-CO)(μ3-Se)] (4) affords [Ru3(CO)7(μ-H)2(μ-dppm)(μ3-Se)] (5) in 85% yield. The molecular structures of 2 and 5 reveal that the diphosphine and one hydride simultaneously bridge the same ruthenium-ruthenium edge with the second hydride spanning one of the non-bridged edges. Both 2 and 5 are fluxional at room temperature being attributed to hydride migration between the non-bridged edges. Addition of HBF4 to 2 affords the cationic trihydride [Ru3(CO)7(μ-H)3(μ-dppm)(μ3-S)][BF4] (6) in which the hydrides are non-fluxional due to the blocking of the free ruthenium-ruthenium edge.  相似文献   

3.
Reaction of [Os3(μ-H)2(CO)10] with 3,4-dimethyl-1-phenylphosphole in refluxing cyclohexane affords two substituted triosmium clusters: [Os3(CO)9(μ-H)(μ3112-PhPC4H3Me2)] (1) and [Os3(CO)9(H)(μ212-PhPC4H4Me2)] (2), of which cluster 2 exhibits two chromatographically non-separable isomeric forms attributed to terminal and bridging coordination of the hydride ligand, respectively. When this reaction is performed in refluxing THF, the only product is the cluster [Os3(CO)9(μ-OH)(μ-H)(η1-PhPC4H2Me2)] (3). Crystallographic information obtained for cluster 3 shows the phosphole ligand occupying an equatorial position, as expected, while the OH group is asymmetrically bridging unlike previously reported similar compounds. Additionally, interaction of the labile cluster [Os3(CO)11(CH3CN)] with cyanoethyldi-tert-butylphosphine in dichloromethane at room temperature was found to give [Os3(CO)111- t Bu2PC2H4CN)] (4) as the only product; its crystallographic characterization shows that the phosphine ligand coordinates by means of the phosphorus atom in an equatorial fashion, analogous to compound 3.  相似文献   

4.
Treatment of [Ru3(CO)10(μ-dppm)] (4) [dppm = bis(diphenylphosphido)methane] with tetramethylthiourea at 66 °C gave the previously reported dihydrido triruthenium cluster [Ru3(μ-H)23-S)(CO)7(μ-dppm)] (5) and the new compounds [Ru33-S)2(CO)7(μ-dppm)] (6), [Ru33-S)(CO)73-CO)(μ-dppm)] (7) and [Ru33-S){η1-C(NMe2)2}(CO)63-CO)(μ-dppm)] (8) in 6%, 10%, 32% and 9% yields, respectively. Treatment of 4 with thiourea at the same temperature gave 5 and 7 in 30% and 10% yields, respectively. Compound 7 reacts further with tetramethylthiourea at 66 °C to yield 6 (30%) and a new compound [Ru33-S)21-C(NMe2)2}(CO)6(μ-dppm)] (9) (8%). Thermolysis of 8 in refluxing THF yields 7 in 55% yield. The reaction of 4 with selenium at 66 °C yields the new compounds [Ru33-Se)(CO)73-CO)(μ-dppm)] (10) and [Ru33-Se)(μ33-PhPCH2PPh(C6H4)}(CO)6(μ-CO)] (11) and the known compounds [Ru3(μ-H)23-Se)(CO)7(μ-dppm)] (12) and [Ru43-Se)4(CO)10(μ-dppm)] (13) in 29%, 5%, 2% and 5% yields, respectively. Treatment of 10 with tetramethylthiourea at 66 °C gives the mixed sulfur-selenium compounds [Ru33-S)(μ3-Se)(CO)7(μ-dppm)] (14) and [Ru33-S)(μ3-Se){η1-C(NMe2)2}(CO)6(μ-dppm)] (15) in 38% and 10% yields, respectively. The single-crystal XRD structures of 6, 7, 8, 10, 14 and 15 are reported.  相似文献   

5.
The ruthenium-tin complex, [Ru2(CO)4(SnPh3)2(μ-pyS)2] (1), the main product of the oxidative-addition of pySSnPh3 to Ru3(CO)12 in refluxing benzene, is [Ru(CO)2(pyS)(SnPh3)] synthon. It reacts with PPh3 to give [Ru(CO)2(SnPh3)(PPh3)(κ2-pyS)] (2) and further with Ru3(CO)12 or [Os3(CO)10(NCMe)2] to afford the butterfly clusters [MRu3(CO)12(SnPh3)(μ3-pyS)] (3, M=Ru; 4, M=Os). Direct addition of pySSnPh3 to [Os3(CO)10(NCMe)2] at 70 °C gives [Os3(CO)9(SnPh3)(μ3-pyS)] (5) as the only bimetallic compound, while with unsaturated [Os3(CO)83-PPh2CH2P(Ph)C6H4}(μ-H)] the previously reported [Os3(CO)8(μ-pyS)(μ-H)(μ-dppm)] (6) and the new bimetallic cluster [Os3(CO)7(SnPh3){μ-Ph2PCH2P(Ph)C6H4}(μ-pyS)[(μ-H)] (7) are formed at 110 °C. Compounds 1, 2, 4, 5 and 7 have been characterized by X-ray diffraction studies.  相似文献   

6.
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   

7.
Microwave heating allows for the high-yield, one-step synthesis of the known triosmium complexes Os3(μ-Br)2(CO)10 (1), Os3(μ-I)2(CO)10 (2), and Os3(μ-H)(μ-OR)(CO)10 with R = methyl (3), ethyl (4), isopropyl (5), n-butyl (6), and phenyl (7). In addition, the new clusters Os3(μ-H)(μ-OR)(CO)10 with R = n-propyl (8), sec-butyl (9), isobutyl (10), and tert-butyl (11) are synthesized in a microwave reactor. The preparation of these complexes is easily accomplished without the need to first prepare an activated derivative of Os3(CO)12, and without the need to exclude air from the reaction vessel. The syntheses of complexes 1 and 2 are carried out in less than 15 min by heating stoichiometric mixtures of Os3(CO)12 and the appropriate halogen in cyclohexane. Clusters 36 and 810 are prepared by the microwave irradiation of Os3(CO)12 in neat alcohols, while clusters 7 and 11 are prepared from mixtures of Os3(CO)12, alcohol and 1,2-dichlorobenzene. Structural characterization of clusters 2, 4, and 5 was carried out by X-ray crystallographic analysis. High resolution X-ray crystal structures of two other oxidative addition products, Os3(CO)12I2 (12) and Os3(μ-H)(μ-O2CC6H5)(CO)10 (13), are also presented.  相似文献   

8.
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   

9.
Thecloso octahedral cluster Ru4(CO)114-PPh)(μ4-S)1 and selenium and tellurium analogues, the first examples of unsaturated ruthenium clusters with a planar metal core and different main group 15 and 16 atoms have been synthesized fromnido Ru4(CO)133-PPh). An X-ray analysis of1 and Ru4(CO)104-PPh)(μ4-Se)(PEt3)2a has confirmed thetrans disposition of phosphorus and group 16 main group fragments.  相似文献   

10.
Treatment of the electronically unsaturated cluster [(μ-H)Os3(CO)8{Ph2PCH2P(Ph)C6H4}] (1) with primary phosphines PPhH2 and PCyH2 gives the phosphido bridged compounds [(μ-H)Os3(CO)8(μ-PPhH)(μ-dppm)] (2) and [(μ-H)Os3(CO)8(μ-PCyH)(μ-dppm)] (3), respectively, by P-H bond activation of the phosphines and demetallation of the phenyl ring of the diphosphine ligand. Thermolysis of 2 and 3 in refluxing octane at 128 °C results in the formation of the phosphinidene compounds [(μ-H)2Os3(CO)73-PPh)(μ-dppm)] (4) and [(μ-H)2Os3(CO)73-PCy)(μ-dppm)] (5), respectively, by further P-H bond cleavage of the phosphido groups. All the compounds have been characterized by infrared, 1H NMR, 31P{1H} NMR and mass spectroscopic data together with single-crystal X-ray diffraction studies for 4. Compound 4 consists of a triangular cluster of osmium atoms with a symmetrically capped phosphinidene ligand and a bridging dppm ligand.  相似文献   

11.
The reaction of [Os3(CO)12] with tetramethylthiourea in the presence of a methanolic solution of Me3NO·2H2O at 60° yields the compounds [Os3(CO)11{η 1-SC(NMe2)2}] (1) in 56% yield and [Os3(CO)9(μ-OH)(μ-MeOCO){η 1-SC(NMe2)2}] (2) in 10% yield in which the tetramethylthiourea ligand is coordinatedvia the sulfur atom at an equatorial position. Compound2 is a 50 e? cluster with two metal-metal bonds and the hydroxy and methoxycarbonyl ligands bridging the open metal-metal edge. In contrast, the analogous reaction of [Os3(CO)12] with thiourea gives the compounts [(μ-H)Os3(CO)10{μ-NHC(S)NH2}] (3) in 8% yield and [(μ-H)Os3(CO)9{3-NHC(S)NH2}] (4) in 30% yield. In3, the thioureato ligand bridges two osmium atomsvia the sulfur atom, whereas in4 in addition to the sulfur bridge, one of the nitrogen atoms of thioureato moiety bonds to the remaining osmium atom. The decacarbonyl compounds 3 can also be obtained in 50% yield from the reaction of [Os3(CO)10(MeCN)2] with thiourea at ambient temperature. Compound3 converts to4 (65%) photochemically. Compound1 reacts with PPh3 and acetonitrile at ambient temperature to give the simple substitution products [Os3(CO)11(PPh3)] and [Os3(CO)11(MeCN)], respectively, while with pyridine, the oxidative addition product [(μ-H)Os3(CO)10(μ-NC5H4] is formed at 80°C. All the new compounds are characterized by IR,1-H-NMR and elemental analysis together with the X-ray crystal structures of1,2 and4. Compound1 crystallizes in the triclinic space group P $P\bar 1$ with unit cell parametersa = 8.626(3) Å,b = 11.639(3) Å,c = 12.568(3_ Å,α = 84.67(2)°,β = 75.36(2)°,γ = 79.49(3)°,V = 1199(1) Å3, andZ = 2. Least-squares refinement of 4585 reflections gave a final agreement factor ofR = 0.0766 (R w = 0.0823). Compound2 crystallizes in the monoclinic space group P21/n with unit cell parametersa = 9.149(5) Å,b = 17.483(5) Å,c = 15.094(4) Å,β = 91.75(2)°,V = 2413(2) Å3, andZ = 4. Least-squares refinement of 3632 reflections gave a final agreement factor ofR = 0.0603 (R w = 0.0802). Compound4 crystallizes in the monoclinic space group C2/c with unit cell parametersa = 13.915(7) Å,b = 14.718(6) Å,c = 17.109(6) Å,β = 100.44(3)°,V = 3446(5) Å3, andZ = 8. Least-squares refinement of 2910 reflections gave a final agreement factor ofR = 0.0763 (R w = 0.0863).  相似文献   

12.
Photoirradiation of Os3(CO)10(C14H20) (1) in n-hexane produces the double-decker cluster [Os3(CO)9(C28H40)] [Os3(CO)10] (7), which can also be prepared from the reaction of Os3(CO)9(C28H40) (2) and Os3(CO)10(NCMe)2. Further reaction of 7 with Os3(CO)10(NCMe)2 affords the triple-decker cluster [Os3(CO)9(C28H40)][Os3(CO)10]2 (8). The bis(diyne) complex Os3(CO)8(C14H20)2 (3) reacts with Os3(CO)10(NCMe)2 sequentially to yield the double-decker cluster [Os3(CO)8(C14H20)2][Os3(CO)10] (4) and the triple-decker cluster [Os3(CO)8(C14H20)2][Os3(CO)10]2 (5). Treatment of 3 with Co2(CO)8 at room temperature leads to the mixed-metal triple-decker cluster [Os3(CO)8(C14H20)2][Co2(CO)6]2 (6), while the reaction of 2 and Co2(CO)8 produces [Os3(CO)9(C28H40)][Co2(CO)6]2 (9) and [Os2(CO)6(C28H40)][Co2(CO)6]2 (10). Compound 10, which involves cluster degradation from Os3 to Os2, has been structurally characterized by an X-ray diffraction study.  相似文献   

13.
Thermal reaction of [Ru3(CO)12] with PH2Mes (Mes = mesityl) in refluxing toluene afforded mesitylphosphinidene-capped ruthenium carbonyl clusters, [Ru3(CO)9(μ-H)23-PMes)] (1), [Ru3(CO)8(PH2Mes)(μ-H)23-PMes)] (2), [Ru3(CO)93-PMes)2] (3), [Ru4(CO)10(μ-CO)(μ4-PMes)2] (4), and [Ru5(CO)10H24-PMes)(μ3-PMes)2] (5). All products were fully characterized and structurally confirmed by X-ray crystal structure analysis. Complexes 2-4 were also obtained in high yields by stepwise reaction starting from 1. Fluxional behavior of carbonyl groups was observed in case of 4. Complex 5 reveals a new type of skeletal structure, bicapped-octahedron having μ3- and μ4-phosphinidene ligands at the capping positions. Similar reaction of [Os3(CO)12] with PH2Mes yielded a phosphido-bridged osmium cluster [Os3(CO)10(μ-H)(μ-PHMes)] (6) and a phosphinidene-capped cluster [Os3(CO)9(μ-H)23-PMes)] (7).  相似文献   

14.
The mixed metal cluster Cp*IrOs3(μ-H)2(CO)10 (1) reacted readily with a number of group 16 substrates under chemical activation with TMNO. It reacted with C6H5SH to afford the novel cluster Cp*IrOs3(μ-H)3(CO)9(μ-SPh) (2). It also reacted readily with Ph3PSe to afford five new clusters, viz., Cp*IrOs3(μ-H)2(CO)93-Se) (3) Os3(μ-H)2(CO)73-Se)(PPh3)2 (4), Cp*IrOs3(μ-H)2(CO)9(PPh3) (5), Cp*IrOs3(μ-H)23-Se)(CO)8(PPh3) (6) and Cp*IrOs3(μ-H)23-Se)2(CO)7(PPh3) (7). The reaction pathway for this reaction has been studied carefully and suggests that Ph3PSe functioned primarily as a selenium atom transfer agent to give initially the even more reactive 3. The reaction of 1 with di-p-tolyl ditelluride yielded three new clusters, 8-10, which were non-interconverting stereoisomers with the formulation Cp*IrOs3(μ-H)2(μ-Te-p-C6H4CH3)2(CO)8.  相似文献   

15.
Tris(2-thienyl)phosphine, P(C4H3S)3, reacts with [Os3(CO)12] at 110 °C to give the phosphine-substituted derivatives [Os3(CO)11{P(C4H3S)3}] (1), [Os3(CO)10{P(C4H3S)3}2] (2) and [Os3(CO)9{P(C4H3S)3}3] (4), as well as the C-H activated product [Os3(μ-H)(CO)9{μ-P(C4H2S)(C4H3S)2}{P(C4H3S)3}] (3), in which the bridging ligand is equatorially coordinated to two osmium atoms. Thermolysis of 2 in refluxing toluene results in the formation of 3. Compound 1 can also be prepared in high yield from [Os3(CO)11(NCMe)]. The reaction of [Os3(μ-H)2(CO)10] with tris(2-thienyl)phosphine at room temperature afforded [Os3(μ-H)2(CO)9{P(C4H3S)3}] (5) and [Os3H(μ-H)(CO)10{P(C4H3S)3}] (6), with the ligand coordinated through the phosphorus atom whereas at elevated temperature the cyclometallated compounds [Os3(μ-H)(CO)93-P(C4H2S)(C4H3S)2}] (7) and [Os3(μ-H)(CO)83-P(C4H2S)(C4H3S)2{P(C4H3S)3}] (8) were obtained in addition to 5. Heating 6 in refluxing heptane furnished 5 via loss of one carbonyl ligand. Thermolysis of 1 and 3 in refluxing toluene gives 7 and 8, respectively, in good yields. In 3, the μ-P(C4H2S)(C4H3S)2 ligand is coordinated through the phosphorus to one Os atom and through a σ-Os-C bond to the second osmium atom. Compound 7 contains the μ3-P(C4H2S)(C4H3S)2 ligand bound through phosphorus to one Os atom, through a σ-Os-C bond to another and by an η2 (π)-interaction to the third osmium atom. Compounds 1, 2 and 4 contain the ligand coordinated exclusively through the phosphorus atom. The crystal and molecular structures of 2, 3, 5, 6 and 7 are reported.  相似文献   

16.
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   

17.
In the reaction of Na2Se with [Fe(CO)5] in isopropanol with subsequent acidification with HCl, which is used to synthesize [(μ-H)2Fe33-Se)(CO)9] (II), the cluster [(μ-H)2Fe53-Se)2(CO)14] (I) was detected. In assumption that compound I could serve as a suitable synthon for preparing the bulky heterometallic clusters, its reactions with the Rh-containing complexes were studied. The reaction of I with [Rh(CO)2Cp*] (Cp* is pentamethylcyclopentadienyl) was found to give a mixture of the products. The main reaction products were isolated and their structures were determined: [Fe2Rh(μ3-Se)2(CO)6Cp*], [Fe2Rh(μ3-Se)(μ3-CO)(CO)6Cp*], [FeRh23-Se)(μ-CO)(CO)3Cp 2 * ], [Fe2Rh24-Se)(μ-CO)4(CO)2Cp 2 * ]. Potassium hydride treatment of II with subsequent addition of [Cp*Rh(CH3CN)3](CF3SO3)2 leads to the well-known cluster complex [Fe3Rh(μ4-Se)(CO)9Cp*]. A set of the reaction products indicates that the {Fe5Se2} core cannot be used as one-piece “building block” in the synthesis of heterometallic clusters.  相似文献   

18.
The compound [Os3(CO)10(μ-Cl)(μ-AuPPh3)] (2) was prepared from the reaction between [Os3(CO)10(NCMe)2] (1) and [AuClPPh3] under mild conditions. The reaction of 2 with 4-mercaptopyridine (4-pyS) ligand yielded compounds [Os3(CO)10(μ-H)(μ-SC5H4N)] (4), formed by isolobal replacement of the fragment [AuPPh3]+ by H+ and [Os3(CO)10(μ-AuPPh3)(μ-SC5H4N)] (5). [Os3(CO)10(μ-H)(μ-SC5H4N)] (4) was also obtained by substitution of two acetonitrile ligands in the activated cluster 1 by 4-pyS, at room temperature in dichloromethane. Compounds 2-5 were characterized spectroscopically and the molecular structures of 4 and 5 in the solid state were obtained by single crystal X-ray diffraction studies.  相似文献   

19.
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   

20.
Heating [Os3(CO)10(μ-dppm)] (1) with two equivalents of PhSSPh in toluene under reflux provided three new triosmium compounds [(μ-H)Os3(CO)7(μ-SPh){μ34-Ph2PCHP(Ph)C6H4}] (2), [Os3(CO)8(μ-SPh)2(μ-dppm)] (3) and [(μ-H)Os3(CO)7(μ-η2-SC6H4)(μ-SPh)(μ-dppm)] (4) in 20%, 21% and 26% yields, respectively. In contrast, a similar reaction of 1 with two equivalents of PhTeTePh in refluxing toluene gave the binuclear compound [Os2(CO)4(μ-TePh)2(μ-dppm)] (6) in 15% yield, and two 50 electron isomeric compounds 5 and 7 with the formula [Os3(CO)8(μ-TePh)2(μ-dppm)] in 20% and 23% yields, respectively. Thermolysis of 3 at 110 °C afforded 4 in 53% yield which on further thermolysis in refluxing octane at 128 °C gave 2 in 45% yield. Thermolysis of 3 in refluxing octane also gave 2 in 50% yield. The new compounds, 2–7, were all spectroscopically characterized, and the X-ray structures of 2, 3 and 7 have been determined. Compound 2 contains a bridging SPh ligand and a μ34-Ph2PCHP(Ph)C6H4 ligand, formed by two kinds of C–H activation, including orthometallation of a phenyl group as well as an unusual activation of the methylene group of the dppm ligand. The molecular structure of 3 reveals that two SPh groups span the open Os–Os edge of the Os3 triangle, while the dppm ligand bridges one of the closed Os–Os edges. In compound 7, one TePh group spans the open Os–Os edge, while the other spans one of the two closed Os–Os edges and the dppm ligand bridges the third Os–Os vector.  相似文献   

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