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1.
2.
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   

3.
Pyrolysis a the cluster Os3(µ-H h (CO)10 (SnMe2 H) produced an as yet unidentified purple duster, which upon reaction with PEt2Ph at room temperature, gave essentially a quantitative yield of the cluster Os3(µ-H)3(CO)93-Sn) Os3(µ-H)(CO)10(PEt2Ph), 4. The X-ray structure of 4 (as the toluene solvate) shows that it consists Or two Os, triangles linked through a µ4-Sn unit, such that one of the Os3 triangle is µ3-bonded to the Sn atom (Os-Sn range 2.689(2)–2.707(2) Å) and the other is bonded via a single covalent bond (Os-Sn = 2.643(2) Å). The phosphine ligand occupies the equatorial site on a second osmium atom a be latter Os3 moiety that is syn to the Sn atom; the unique bridging hydride ligarid is believed to occupy a site that Acis to both the P and Sn atoms. Crystallographic data for compound4. 0.5C7H8: space group,P ; ca= 11862(4) Å,b = 12.940(4) Å,c = 16.513(5) Å, =68.96(3),=80.60(3)°,=62.49(2).R=0.029, 4118 observed reflections.  相似文献   

4.
The structure of the previously synthesized triosmium cluster was revised. The structure Os3(μ-H)2(CO)7(μ-C6H4){μ3-Ph2PCH2P(C6H4)Ph} suggested earlier was not confirmed. The cluster has the composition Os3(μ-H)2(CO)7(μ-C5H4N){μ3-Ph2PCH2P(C6H4)Ph} and contains the ortho-metalated pyridine ligand. The X-ray diffraction study of the complex Os3(μ-H)2(CO)7(μ-MeC5H3N){μ3-Ph2PCH2P(C6H4)Ph} containing the ortho-metalated 4-methylpyridine ligand made it possible to distinguish between the C and N atoms of the pyridine ligands in the resulting triosmium clusters.  相似文献   

5.
The complexes Pt(nb)3-n(P-iPr3)n (n=1, 2, nb=bicyclo[2.2.1]hept-2-ene), prepared in situ from Pt(nb)3, are useful reagents for addition of Pt(P-iPr3)n fragments to saturated triruthenium clusters. The complexes Ru3Pt(CO)11(P-iPr3)2 (1), Ru3Pt(-H)(3-3-MeCCHCMe)(CO)9(P-iPr3) (2), Ru3Pt(3-2-PhCCPh)(CO)10(P-iPr3) (3), Ru3Pt(-H)(4-N)(CO)10(P-iPr3) (4) and Ru3Pt(-H)(4-2-NO)(CO)10(P-iPr3) (5) have been prepared in this fashion. All complexes have been characterized spectroscopically and by single crystal X-ray determinations. Clusters 1–3 all have 60 cluster valence electrons (CVE) but exhibit differing metal skeletal geometries. Cluster 1 exhibits a planar-rhomboidal metal skeleton with 5 metal–metal bonds and with minor disorder in the metal atoms. Cluster 2 has a distorted tetrahedral metal arrangement, while cluster 3 has a butterfly framework (butterfly angle=118.93(2)°). Clusters 4 and 5 posseses 62 CVE and spiked triangular metal frameworks. Cluster 4 contains a 4-nitrido ligand, while cluster 5 has a highly unusual 4-2-nitrosyl ligand with a very long nitrosyl N–O distance of 1.366(5) Å.  相似文献   

6.
The reaction of the unsaturated cluster [(-H)Os3(CO)8{Ph2PCH2P(Ph)C6H4}] 2 with C2H5SH, CH3CH(CH3)SH and C6H5SH are reported. The reaction of 2 with C2H5SH yields the new complexes [Os3(CO)8(-SC2H5)(1-SC2H5){Ph2PCH2P(Ph)C6H4}(-H)] 9 and [Os3(CO)8)(SC2H5)(Ph2PCH2P)(Ph)C6H4}] 8 in 24 and 57% yields respectively and the known compound [(Os3(CO)8)(-SC2H5)(-dppm)(-H)] 7 in 5% yield. Compound 9, which exists as two isomers in solution, converts into 8 almost quantitatively in solution at 25°C and more rapidly in refluxing hexane. Compound8 reacts with H2 at 110°C to give 7 in high yield (86%). Treatment of 2 with propane-2-thiol yields [Os3(CO)8{-SCH(CH3)CH3}{Ph2PCH2P(Ph)C6H4}] 10 and [(Os3(CO)8{-SCH(CH3)CH3}{1-SCH(CH3)CH3}{Ph2PCH2P(Ph)C6H4}(-H)] 11 in 75 and 3% yields respectively while with C6H5SH, [(Os3(CO)8(-SC6H5)(-dppm)(-H)] 6 is obtained as the only product in 75% yield. In both 8 and 10, the thiolato ligand bridges the Os–Os edge which is also bridged by the metallated phenyl group. The new compounds have been characterized by elemental analyses and spectroscopic methods (IR, 1H and 31P NMR). The molecular structures of 7, 8, 9 and 10 are reported as determined by X-ray diffraction studies.  相似文献   

7.
The reaction of (μ-H)Os3μ-O2CC5H4Mn(CO)3(CO)10 with PPh3 in the presence of Me3NO gave mono- and disubstituted heterometallic complexes (μ-H)Os3μ-O2CC5H4Mn(CO)3(PPh3)(CO)9 and (μ-H)Os3μ-O2CC5H4Mn(CO)3 (PPh3)2(CO)8. Crystal structure determination was performed for three isomeric cluster complexes (μ-H)Os3μ-O2CC5H4Mn(CO)3(PPh3)2(CO)8, which are both geometrical and conformational isomers differing in color. The geometrical isomerism is due to the attachment of the PPh3 group at different vertices of the Os3 triangle relative to the O2CC5H4Mn(CO)3 bridging ligand. The conform ational isomerism implies that the molecules have the same arrangement of ligands and differ only in the values of bond angles between the planar fragments of the clusters.  相似文献   

8.
The reactions of the heterometallic complexes (-H)Os3(-O2CC5H4FeCp)(CO)10 (1) and Fe{(-O2CC5H4)(-H)Os3(CO)10}2 (2) with CF3COOH, CF3SO3H, and AcCl were studied. The reaction of 1 with CF3COOH involves interaction with the Cp ligands, protonation of the O atom of the bridging carboxylate group, and oxidative degradation of the complex. At low concentrations, CF3SO3H protonates the O atom of the bridging carboxylate group, while at high concentrations, degradation of the complex takes place. The reaction of complex 2with either CF3COOH or low concentrations of CF3SO3H results in successive elimination of two [(-H)Os3(CO)10] cluster fragments due to protonation of the O atoms of the carboxylate groups. In the case of high CF3SO3H concentrations, the Os—Os bonds of both cluster fragments of 2 are also protonated to give the [Fe{(-O2CC5H4)(-H)2Os3(CO)10}2]2+ dication. The Friedel—Crafts acylation of 1 takes place only when a large excess of AcCl and AlCl3 is used to give two new complexes, (-H)Os3(-O2CC5H4FeC5H4C(O)CH3)(CO)10 and (-H)Os3(-O2CC5H3C(O)CH3FeCp)(CO)10 in a 2 : 1 ratio.  相似文献   

9.
The Os3(-H)2(CO)7(-C6H4){3-Ph2PCH2P(C6H4)Ph} complex, which was isolated from the products of thermolysis of Os3(CO)10(-dppm) (dppm is Ph2PCH2PPh2) in toluene, was characterized by X-ray diffraction analysis. Protonation of the resulting complex with trifluoroacetic acid afforded the cationic complex [Os3(-H)3(CO)7(-C6H4){3-Ph2PCH2P(C6H4)Ph}]+.  相似文献   

10.
The trinuclear osmium carbonyl cluster, [Os3(CO)10(MeCN)2], is allowed to react with 1 equiv. of [IrCp1Cl2]2 (Cp1 = pentamethylcyclopentadiene) in refluxing dichloromethane to give two new osmium–iridium mixed-metal clusters, [Os3Ir2(Cp1)2(μ-OH)(μ-CO)2(CO)8Cl] (1) and [Os3IrCp1(μ-OH)(CO)10Cl] (2), in moderate yields. In the presence of a pyridyl ligand, [C5H3N(NH2)Br], however, the products isolated are different. Two osmium–iridium clusters with different coordination modes of the pyridyl ligand are afforded, [Os3IrCp1(μ-H)(μ-Cl)(η33-C5H2N(NH2)Br)(CO)9] (3) and [Os3IrCp1(μ-Cl)223-C5H3N(NH)Br)(CO)7] (4). All of the new compounds are characterized by conventional spectroscopic methods, and their structures are determined by single-crystal X-ray diffraction analysis.  相似文献   

11.
The reaction of Pt(C2H4)2(PCy3) with (OC)4M(μ-H)(μ-PnPr2)Pt(CO)(PCy3, (1: M  Cr, Mo, W) occurs in a highly specific, kinetically controlled manner to give MPt22MPt-CO)(η2PtPt-H)(μ2MPt-PnPr2)(CO)4 (PCy3)2 (5), as the first formed trimer. The trimer 5 (M  Mo, W) isomerizes to give MPt22PtPt-CO) ((μ2MPtH)(μ2MPt-PnPr2)(CO)4)PCy3)2 (6) which in turn isomerizes to MPt2μ2MPtCO)(μ2MPt2PtPt-PnPr2)(CO)4(PCy3)2 (7, as the final isolable product. These results provide a detailed insight into the mechanism of “Pt(PCy3) addition”, a cluster assembly process.  相似文献   

12.
The compound [Ru4(μ-Se)2(CO)8(μ3-CO)3] (1), has been obtained in good yield by vacuum pyrolysis of [RU3(CO)12] with [Ph2Se2] at 185°C. Reaction of 1 with 1,3-bis(diphenylphosphino)propane at room temperature affords the novel cluster [RU33-Se)2(CO)7(Ph2P(CH2)3PPh2)] (2). The structures of 1 and 2 have been determined by an X-ray diffraction study.  相似文献   

13.
Photolysis of the heterometallic complex (μ-H)Os3{μ-O2CC5H4Mn(CO)3}(CO)10 together with PPh3 results in replacement of the CO groups by PPh3 both at the Mn atom and in the Os3 metallocycle to afford the complexes (μ-H)Os3{μ-O2CC5H4Mn(CO)2PPh3}(CO)10, (μ-H)Os3{μ-O2CC5H4Mn(CO)3}(CO)9}(CO)9PPh3, and (μ-H)Os3{μ-O2CC5H4Mn(CO)2PPh3}(CO)9PPh3 (two isomers). The reaction is also accompanied by the partial removal of the Mn(CO)3 group followed by the protonation of the cyclopentadienyl group and formation of triosmium clusters (μ-H)Os3(μ-O2CC5H4R}(CO)10 (R=H, Et). Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 4, pp. 746–751, April, 2000.  相似文献   

14.
金属簇合物具有独特的结构和成键方式。本文对铑簇合物的简正振动分析进行了研究。通过红外光谱用石蜡油糊涂KBr和聚乙烯窗口, 在Nicolet 200SXV FT-IR光谱上测定了Rh2(CO)4(μ-Cl)2的构型, 并使用分子振动全分析程序MVTA(Basic语言), 在PC机上进行计算。  相似文献   

15.
Treatment of closo-[Ru44-PPh)22-CO)(CO)10] with acetylene under ambient conditions leads to the insertion of the acetylene into the skeletal framework of the cluster and the formation of [Ru44-PPh){μ43-P(Ph)CHCH}(μ2-CO)(CO)10], the structure of which has been determined X-ray crystallographically.  相似文献   

16.
A series of novel chiral complexes with ,1and ,2 coordination of organic ligands were prepared by reactions of Os3(CO)11(MeCN) and (-H)Os3(CO)10(-OH) withL--serine ethyl ester and ethanolamine. The diastereomeric cluster complexes with serine ligands were separated by crystallization or chromatography. The structures of the compounds obtained were confirmed by1H NMR and IR spectroscopy, mass-spectrometry, elemental analysis, and X-ray diffraction analysis.Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 3, pp. 525–530, March, 1994.  相似文献   

17.
18.
The reaction between Ru3(3-2-PhC2C=CPh)(-dppm)(CO)8 and Co2(CO)8 afforded dark red Co2Ru3(4-C2Ph)(3-C2Ph)(-dppm)(-CO)2(CO)9, shown by an X-ray structure determination to contain a strongly twisted Co2Ru3 bow-tie cluster (central Co), to which two PhC2 units derived from cleavage of the original diyne are attached. One a these is strongly interacting with four metal atoms, the other being attached in the familiar 1,22-mode. The dppm ligand remains bridging two of the Ru atoms.  相似文献   

19.
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   

20.
Treatment of a solution of [Os3(CO)10(R2C2)] (R = Me (1, R = Ph (2)) in CH2Cl2 with Me3No/MeCN in the presence of R′2C2 affords the new organometallic cluster [Os3(CO)8(R2C2)(R′2C2)] (R = R′ = Me (3), R = R′ = Ph (4) and R = Ph, R′ = Me (5)). A single crystal X-ray analysis of compound 4 has established a triangular metal framework with both the alkyne units coordinated in a μ32-6-mode. In toluene, at 80°C, compound 4 undergoes rearrangement to the known compound, [Os3H(CO)8(Ph)C2(C6H4))] (6) in which CC bond formation has occurred to produce an osmacyclopentadiene ring.  相似文献   

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