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1.
The redox condensation of [Ir(CO)4], [Ir(cod)(THF)2]+, and [Rh(cod)(THF)2]+ (cod = cycloocta-1,5-diene) followed by saturation with CO (1 atm) in THF afforded the first synthetic route to pure [Ir3Rh(CO)12] ( 1 ). Substitution of CO by monodentate ligands gave [Ir3Rh(CO)82-CO)3L] (L = Br, 2 ; I, 3 ; bicyclo[2.2.1]hept-2-ene, 4 ; PPh3, 5 ). Clusters 2 – 5 have Cs symmetry with the ligand L bound to the basal Rh-atom in axial position. They are fluxional in solution at the NMR time scale due to two CO scrambling processes: the merry-go-round of basal CO's and changes of basal face. An additional process takes place in 5 above room temperature: the intramolecular migration of PPh3 from the Rh- to a basal Ir-atom. Substitution of CO by polydentate ligands gave [Ir3Rh(CO)7–x2-CO)34-L)x] (L = bicyclo[2.2.1]hepta-2,5-diene (= norbornadiene; nbd), x = 1, 6 ; L = nbd, x = 2, 13 ; L = cod, x = 1, 7 ; L = cod x = 2, 15 ), [Ir3Rh(CO)72-CO)32-diars)] (diars = 1,2-phenylenebis-(dimethylarsine); 8 ), [Ir3Rh(CO)72-CO)34-L)] (L = methylenebis(diphenylphosphine), bonded to 2 basal Ir-atom ( 9a ) or one Ir- and one Rh-atom ( 9b )), [Ir3Rh(CO)62-CO)34-nbd)PPh3] ( 12 ), and [Ir3Rh(CO)62-CO)33-L)] (L = 1,3,5-trithiane, 10 ; L = CH(PPh2)3, 11 ). Complexes 6 – 8 , 9a , 10 , and 11 have Cs symmetry, the others C1 symmetry. They are fluxional in solution due to CO scrambling processes involving 1, 3, or 4 metal centres as deduced from 2D-EXSY spectra. Comparison of the activation energies of these processes with those of the isostructural Ir4 and Ir2Rh2 compounds showed that substitution of Ir by Rh in the basal face of an Ir4 compound slows the processes involving 3 or 4 metal centres (merry-go-round and change of basal face), but increases the rate of carbonyl rotation about an Ir-atom.  相似文献   

2.
The dynamic behaviour of twelve polysubstituted derivatives of [Ir4(CO)12] has been investigated in solution, using 2D-EXSY, and VT-31P- and 13C-NMR. [Ir4(CO)62-CO)34-diarsine) PPh3] and [Ir4(CO)62-CO)34-nor-bornadiene)(PMePh2)] exhibit two isomeric forms in solution, which interconvert through an intramolecular change of basal face. The related cluster [Ir4(CO)62-CO)34-norbornadiene)PPh3] exists as a single isomer in solution. It displays rotation of CO ligands about the apical Ir-atom, followed by two consecutive changes of basal face. The tetrasubstituted clusters with two chelating ligands [Ir4(CO)52-CO)34-diolefin)2] also exhibit rotation of apical CO's, the activation energy increases with greater steric hindrance of the radical ligands. A quantitative analysis of the 31P- and 13C-2D-EXSY spectra followed by simulation of the corresponding VT-NMR spectra of [IR4(CO)52-CO)32-L)2] (L = bis(diphenylphosphino)methane and 1,3-bis(diphenylphosphino)propane) revealed a pairwise averaging of the P-atoms, caused by two parallel changes of basal face averaging all CO ligands. In addition, the restricted rotation of ligands about the apical Ir-atom was identified at higher temperatures. The remaining clusters are either rigid on the NMR time scale, or display CO-scrambling about a single Ir-atom.  相似文献   

3.
The reaction of [Ir2Rh2(CO)12] with 1 mol-equiv. of PPh3 yields [Ir2Rh2(CO)11PPh3] ( 1 ) as a mixture of two isomers with the phosphine ligand axially bound either to one basal Rh-atom in the kinetically preferred isomer 1 R or to one basal Ir-atom in the thermodynamically preferred isomer 11 . Both isomers are fluxional on the 13C-NMR time scale at low temperature due to CO scrambling. Around room temperature, a new type of fluxional process starts to operate which is responsible for the isomerisation 1R?11 , i.e. the intramolecular migration of the reputedly inert PPh3 ligand from one metal centre to another. The activation volumes of conversions 1R → 11 and 11 → 1R are both positive, indicating that the migration of PPh3 is dissociative in character. This article reports the first application of variable pressure 31P-NMR to mechanistic studies.  相似文献   

4.
The controlled reductive carbonylation under 1 atm. of CO of [Ir(cyclooctene)2(μ-Cl)]2, supported on a silica surface added with an alkali carbonate such as Na2CO3 or K2CO3, can be directed toward the formation of [Ir4(CO)12], K2[Ir6(CO)15] or K2[Ir8(CO)22] by controlling (i) the nature and amount of alkali carbonate, (ii) the amount of surface water, and (iii) the temperature. [Ir4(CO)12] can also be prepared by direct controlled reductive carbonylation of IrCl3 supported on silica in the presence of well controlled amounts of Na2CO3. These efficient silica-mediated syntheses are comparable to conventional synthetic methods carried out in solution or on the MgO surface. Like in strongly basic solution or on the MgO surface, the initially formed [Ir4(CO)12], the first step of nucleation which does not require a strong basicity of the silica surface, gives in a second time sequentially [Ir8(CO)22]2? and [Ir6(CO)15]2? according to reaction conditions and basicity of the silica surface.  相似文献   

5.
The fluxionality of [Ir4(CO)82-CO)3L] (L = Br?, I?, SCN?, NO2?, P(4-ClC6H4)3, PPh3, P(4-MeOC6H4)3, P(4-Me2NC6H4)3), as studied by 2D-13C-NMR in solution, is due to two successive scrambling processes: the merry-go-round of six basal CO's and CO bridging to alternative faces of the Ir4 tetrahedron. The basicity of the ligand L has no significant effect on the activation parameters. The scrambling process of lowest activation energy in [Ir4(CO)72-CO)3(PMePh2)2] correspond to the two possible synchronous CO bridging about a unique face of the metal tetrahedron swapping the relative axial and radial positions of the ligands L. The disubstituted clusters [Ir4(CO)102-L? L)] with one edge-bridging ligand have a ground-state geometry with three edge-bridging CO's (L? L = bis(diphenylphosphino)methane, bis(diphenylarsino)methane, bis(diphenylphosphino)propane) or with all terminal CO's (L? L = CH3SCH2SCH3). In all cases, the fluxional process of lowest activation energy in the merry-go-round of six CO's about a unique triangular face. For the P and As donor ligands, this process is followed by the rotation of terminal CO's bonded to two Ir-atoms residing on the mirror plane of the unbridged intermediate.  相似文献   

6.
The iridium and rhodium complexes [MCl(CO)2(NH2C6H4Me-4)] (M = Ir or Rh) react with [Os3(μ-H)2(CO)10] to give the tetranuclear clusters [MOs3(μ-H)2(μ-Cl)(CO)12]; the iridium compound being structurally identified by X-ray diffraction. Similarly, [IrCl(CO)2(NH2C6H4Me-4)] and [Rh2(μ-CO)2(η-C5Me5)2] afford the tetranuclear cluster [Ir2Rh2(μ-CO)(μ3-CO)2(CO)4(η-C5Me5)2], also characterised by single-crystal X-ray crystallog  相似文献   

7.
The two complexes [Ir4(CO)10(diarsine)] (1) and [Ir4(CO)10(1,5-cyclooctadiene)] (2) bear a bidentate ligand chelating one metal atom of the basal face of the Ir4 tetrahedron. However, they differ in fluxional behaviour as observed by 2D-exchange and variable-temperature 13C-NMR. The CO-site exchange with lowest activation energy proceeds via an unbridged intermediate in 2 , whereas that in 1 occurs via a concerted edge-bridging of CO's to an alternative face of the metal core. This difference is apparently related to different ground-state geometries: the basal CO's are symmetrically bridging in 2 , whereas two CO's are semi-bridging in 1 . The molecular structure of 2 was determined by single crystal X-ray diffractometry. The crystals are orthorhombic, space group Pbca, a = 11.651(4), b = 13.118(3), c = 28.64(1)Å. The idealized molecular symmetry is Cs. The diolefin chelates a basal Ir-atom replacing an axial and a radial CO group on the tetrahedral metal-atom framework.  相似文献   

8.
New Phosphorus-bridged Transition Metal Carbonyl Complexes. The Crystal Structures of [Re2(CO)7(PtBu)3], [Co4(CO)10(PtBu)2], [Ir4(CO)6(PtBu)6], and [Ni4(CO)10(PiPr)6], (PtBu)3 reacts with [Mn2(CO)10], [Re2(CO)10], [Co2(CO)8] and [Ir4(CO)12] to form the multinuclear complexes [M2(CO)7(PtBu)3] (M = Re ( 1 ), Mn ( 5 )), [Co4(CO)10(PtBu)2] ( 2 ) and [Ir4(CO)6(PtBu)6] ( 3 ). The reaction of (PiPr)3 with [Ni(CO)4] leads to the tetranuclear cluster [Ni4(CO)10(PiPr)6] ( 4 ). The complex structures were obtained by X-ray single crystal structure analysis: ( 1 : space group P1 (Nr. 2), Z = 2, a = 917.8(3) pm, b = 926.4(3) pm, c = 1 705.6(7) pm, α = 79.75(3)°, β = 85.21(3)°, γ = 66.33(2)°; 2 : space group C2/c (Nr. 15), Z = 4, a = 1 347.7(6) pm, b = 1 032.0(3) pm, c = 1 935.6(8) pm, β = 105.67(2)°; 3 : space group P1 (Nr. 2), Z = 4, a = 1 096.7(4)pm, b = 1 889.8(10)pm, c = 2 485.1(12) pm, α = 75.79(3)°, β = 84.29(3)°, γ = 74.96(3)°; 4 : space group P21/c (Nr. 14), Z = 4, a = 2 002.8(5) pm, b = 1 137.2(8) pm, c = 1 872.5(5) pm, β = 95.52(2)°).  相似文献   

9.
Treatment of [Rh2Cl2(CO)2 {μ-(PhO)2PN(Et)P(OPh)2}2] with various reducing agents gives a number of products, the type depending on the conditions employed. The products isolated include [Rh2(CO)2{μ-(PhO)2PN(Et)P(OPh)2}2], [Rh2(CO)3{μ-(PhO)2PN(Et)P(OPh)2}2],and [Rh2HgCl(μ-H)(CO)2{μ-(PhO)2PN(Et)P(OPh)2}2]; the structure of the last complex was determined by X-ray diffraction.  相似文献   

10.
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   

11.
The reaction of PP(NO2) with M4(CO)12 (M = Co, Rh) gives the nitrido clusters [M6N(CO)15]? in 13 and 21% yields, respectively. A high yield synthesis (77%) of [Rh6N(CO)15)]? directly from Rh6(CO)16 and PPN(NO2) is also presented. PPN(NO2) reacts with Ir4(CO)12 to give the new isocyanato cluster, [Ir4(NCO)(CO)11]? in 34% yield, while the direct synthesis of this isocyanate product occurs in 77% yield from PPN(N3) and Ir4(CO)12. Modifications of published procedures for the preparation of [N(C2H5)4]2 [Ir6(CO)15] and Ir6(CO)16 are reported that allow shorter reaction times and give higher yields. The reaction of Ir6(CO)16 with one equivalent of PPN(NO2) generates a new cluster, PPN[Ir6(CO)15(NO)], in 57% yield which is proposed to contain a bent nitrosyl ligand. An additional equivalent of PPN(NO2) gives (PPN)2[Ir6(CO)15] in 84% yield with the evolution of N2O as well as CO2.  相似文献   

12.
The reaction of the K2[Fe3Q(CO)9] clusters (Q = Se or Te) with Rh2(CO)4Cl2 under mild conditions is accompanied by complicated fragmentation of cores of the starting clusters to form large heteronuclear cluster anions. The [PPh4][Fe4Rh3Se2(CO)16] and [PPh4]2[Fe3Rh4Te2(CO)15] compounds were isolated by treatment of the reaction products with tetraphenylphosphonium bromide. The structures of the products were established by X-ray diffraction. In both compounds, the core of the heteronuclear cluster consists of two octahedra fused via a common Rh3 face. Published in Russian in Izvestiya Akademii Nauk. Seriya Khimicheskaya, No. 5, pp. 775–778, May, 2006.  相似文献   

13.
Reaction of [{Rh(μ-Cl)(CO)2}2] with PPh2H in CO-saturated ethanol yields [Rh3(μ-PPh2)3 (CO)6 (PPh2H)], a red trinuclear cluster of rhodium containing a near-planar six-membered Rh3P3 ring; this compound reversibly undergoes elimination of CO and PPh2H to afford [Rh3(μ-PPh2)3(CO)5].  相似文献   

14.
The monosubstituted [Ir4(CO)11L] clusters (L = P(OPh)3, 1 ; L = P(OMe)3, 2 ; L = P(OCH2)3CEt, 3 ) were obtained in good yields by the reaction of [Ir4(CO)11 I ]? with the corresponding phosphite. In the solid state, cluster 3 has a Cs geometry with all terminal ligands as shown by an X-ray analysis. Three isomers are present in solution: one with terminal ligands ( A ) and two with three edge-bridging CO's and with L in axial ( B ) or radial ( C ) position (see Scheme). The thermodynamic and kinetic parameters of isomerisations B ? A and A ? C were determined by simulation of the variable-temperature 31P-NMR spectra. The three isomers correspond to three minima on the kinetic pathway of CO scrambling, whose relative energies vary independently within a small range (1–9 kJ mol?1 at 298 K). At low temperature, isomer C is always the least stable and is not observed for 1 which bears the most bulky phosphite ligand. The isomerisations are due to two intramolecular merry-go-rounds of CO groups about two unequivalent faces of the unbridged species A .  相似文献   

15.
[Ir4(CO)11X]? anions are obtained by reaction of halide and pseudo-halide ions with Ir4(CO)12. X-ray determination of the structure of [Ir4(CO)11Br]? shows that the carbonyl arrangement differs from that of the parent Ir4(CO)12, and is similar to that known for Co4(CO)12; one terminal CO group in the basal M3(CO)9 moiety is replaced by the bromide ligand, and two of the bridging CO groups become markedly asymmetric.  相似文献   

16.
The new mixed PtRh cluster trianion [Pt2Rh9(CO)22]3? has been isolated as a minor product of the pyrolysis of [PtRh5(CO)15]?, and has been characterized by X-ray diffraction. The metal skeleton, which has ideal D3h symmetry, consists of three face-to-face condensed octahedra, as previously found in the isoelectronic species [Rh11CO)23]3?, with the Pt atoms on the three-fold axis, in the positions of maximum MM connectivity.  相似文献   

17.
Synthesis and Dynamic Behaviour of [Rh2(μ-H)3H2(PiPr3)4]+. Contributions to the Reactivity of the Tetrahydridodirhodium Complex [Rh2H4(PiPr3)4] An improved synthesis of [Rh2H4(PiPr3)4] ( 2 ) from [Rh(η3-C3H5)(PiPr3)2] ( 1 ) or [Rh(η3-CH2C6H5)(PiPr3)2] ( 3 ) and H2 is described. Compound 2 reacts with CO or CH3OH to give trans-[RhH(CO)(PiPr3)2] ( 4 ) and with ethene/acetone to yield a mixture of 4 and trans-[RhCH3(CO)(PiPr3)2] ( 5 ). The carbonyl(methyl) complex 5 has also been prepared from trans-[RhCl(CO)(PiPr3)2] ( 6 ) and CH3MgI. Whereas the reaction of 2 with two parts of CF3CO2H leads to [RhH22-O2CCF3) · (PiPr3)2] ( 8 ), treatment of 2 with one equivalent of CF3CO2H in presence of NH4PF6 gives the dinuclear compound [Rh2H5(PiPr3)4]PF6 ( 9a ). The reactions of 2 with HBF4 and [NO]BF4 afford the complexes [Rh2H5(PiPr3)4]BF4 ( 9b ) and trans-[RhF(NO)(PiPr3)2]BF4 ( 11 ), respectively. In solution, the cation [Rh2(μ-H)3H2(PiPr3)4]+ of the compounds 9a and 9b undergoes an intramolecular rearrangement in which the bridging hydrido and the phosphane ligands are involved.  相似文献   

18.
Synthesis and Structure of the Phosphorus-bridged Transition Metal Complexes [Fe2(CO)6(PR)6] (R = tBu, iPr), [Fe2(CO)4(PiPr)6], [Fe2(CO)3Cl2(PtBu)5], [Co4(CO)10(PiPr)3], [Ni5(CO)10(PiPr)6], and [Ir4(C8H12)4Cl2(PPh)4] (PtBu)3 and (PiPr)3 react with [Fe2(CO)9] to form the dinuclear complexes [Fe2(CO)6(PR)6] (R = tBu: 1 ; iPr: 2 ). 2 is also formed besides [Fe2(CO)4(PiPr)6] ( 3 ) in the reaction of [Fe(CO)5] with (PiPr)3. When PiPr(PtBu)2 and PiPrCl2 are allowed to react with [Fe2(CO)9] it is possible to isolate [Fe2(CO)3Cl2(PtBu)5] ( 4 ). The reactions of (PiPr)3 with [Co2(CO)8] and [Ni(CO)4] lead to the tetra- and pentanuclear clusters [Co4(CO)10(PiPr)3] ( 5 ), [Ni4(CO)10(PiPr)6] [2] and [Ni5(CO)10(PiPr)6] ( 6 ). Finally the reaction of [Ir(C8H12)Cl]2 with K2(PPh)4 leads to the complex [Ir4(C8H12)4Cl2(PPh)4] ( 7 ). The structures of 1–7 were obtained by X-ray single crystal structure analysis (1: space group P21/c (Nr. 14), Z = 8, a = 1 758.8(16) pm, b = 3 625.6(18) pm, c = 1 202.7(7) pm, β = 90.07(3)°; 2 : space group P1 (Nr. 2), Z = 1, a = 880.0(2) pm, b = 932.3(3) pm, c = 1 073.7(2) pm, α = 79.07(2)°, β = 86.93(2)°, γ = 72.23(2)°; 3 : space group Pbca (Nr. 61), Z = 8, a = 952.6(8) pm, b = 1 787.6(12) pm, c = 3 697.2(30) pm; 4 : space group P21/n (Nr. 14), Z = 4, a = 968.0(4) pm, b = 3 362.5(15) pm, c = 1 051.6(3) pm, β = 109.71(2)°; 5 : space group P21/n (Nr. 14), Z = 4, a = 1 040.7(5) pm, b = 1 686.0(5) pm, c = 1 567.7(9) pm, β = 93.88(4)°; 6 : space group Pbca (Nr. 61), Z = 8, a = 1 904.1(8) pm, b = 1 959.9(8) pm, c = 2 309.7(9) pm. 7 : space group P1 (Nr. 2), Z = 2, a = 1 374.4(7) pm, b = 1 476.0(8) pm, c = 1 653.2(9) pm, α = 83.87(4)°, β = 88.76(4)°, γ = 88.28(4)°).  相似文献   

19.
Treatment of the μ(η1)-alkyne complex (η-C5H5)2Rh2(CO)2(CF3C2CF3) with trimethylamine-N-oxide results in mono-decarbonylation to give the μ(η2)- alkyne complex (η-C5H5)2Rh2(μ-CO)(CF3C2CF3). Coordinative addition of a variety of ligands L to the monocarbonyl complex has been achieved at room temperature, and stable adducts (η-C5H5)2Rh2(CO)L(CF3C2CF3) (L  CO, CNBut, PPh3, PMePh2, P(OMe)3, AsPh3, PF3 and PF2(NEt2)) have been fully characterized by infrared and NMR spectroscopy. In each complex, there is a μ(η1)-attachment of the hexafluorobut-2-yne and a trans-arrangement of CO and L. The spectroscopic data establish that there is rapid scrambling of CO and L when L  CNBut. An unstable adduct is formed when (η-C5H5)2Rh2(μ-CO)(CF3C2CF3) is dissolved in pyridine.  相似文献   

20.
Reaction of [Fe2(CO)9] with a half molar amount of R2PYPR2 (Y = CH2, R = Ph, Me, OMe or OPri; Y = N(Et), R = OPh, OMe or OCH2; Y = N(Me), R = OPri or OEt) leads to the ready formation of a product which on irradiation with ultraviolet light rapidly decarbonylates to the heptacarbonyl derivative [Fe2(μ-CO)(CO)6{μ-R2PYPR2}]. Treatment of the latter with a slight excess of the appropriate ligand results, under photochemical conditions, in the formation of the dinuclear pentacarbonyl complex [Fe2(μ-CO)(C))4{μ-R2PYPR2}2] but under thermal conditions in the formation of the mononuclear species [Fe(CO)3{R2PYPR2}]. Reaction of [Ru3(CO)12] with an equimolar amount of (RO)2PN(R′)P(OR)2 (R′ = Me, R = Pri or Et; R′ = Et, R = Ph or Me) under either thermal or photochemical conditions produces [Ru3(CO)10{μ-(RO)2PN(OR)2}] which reacts further with excess (RO)2PN(R′)P(OR)2 on irradiation with ultraviolet light to afford the dinuclear compound [Ru2(μ-CO)(CO4{μ-(RO)2PN(R′)P(OR)2}2]. The molecular structure of [Ru2(μ-CO)(CO)4{μ-(MeO)2PN(Et)P(OMe)2}2], which has been determined by X-ray crystallography, is described.  相似文献   

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