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1.
Cothermolysis of the clusters [Fe33-Q)(μ3-AsCH3)(CO)9] (Q = Se and Te) and the complexes [Cp*M(CO)2] (M = Rh and Ir) was accompanied by isolobal replacement of the fragment {Fe(CO)3} by {Cp*M}; the final reaction products were [Fe2M(μ3-Q)(μ3-AsCH3)(CO)6Cp*]. For M = Ir, these reactions involved addition of an iridium fragment to the starting cluster to give the intermediate adducts [Fe3Ir(μ4-Q)(μ4-AsCH3)(CO)8Cp*]. In the case of [Cp*Rh(CO)2], the intermediate tetranuclear rhodium adducts were also isolated. Sets of these adducts differed for the selenide ([Fe3Rh(μ4-Se)(μ4-AsMe)(CO)8Cp*] and [Fe2Rh23-Se)(μ4-AsMe)(CO)6Cp2*]) and telluride clusters ([Fe3Rh(μ4-Te)(μ3-AsMe)(μ-CO)(CO)9Cp*] and [Fe3Rh23-Te)(μ4-AsMe)(μ3-CO)(μ-CO)(CO)8Cp2*]). The structures of all 10 novel heterometallic clusters were determined by single-crystal X-ray diffraction analysis. Original Russian Text ? N.A. Pushkarevskii, D.A. Bashirov, A.V. Litke, A.V. Virovets, N.V. Kurat’eva, M. Scheer, S.N. Konchenko, 2008, published in Koordinatsionnaya Khimiya, 2008, Vol. 34, No. 12, pp. 883–895.  相似文献   

2.
The 86-electron dicationic octahedral rhodium cluster [Rh6Cp6(μ6-C)]2+(PF6 -)2 containing Cp ligands and the interstitial carbon atom was synthesized by the reaction of Rh3Cp3(μ-CO)3 with RhCp(C2H4)2 Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 2, pp. 395–396, February, 1999  相似文献   

3.
Several new gold-containing cluster complexes have been prepared from the reactions of gold alkynyl complexes, L n M-C x -Au(PPh3), (x = 3, 4, 6) with Ru3(CO)10(NCMe)2. The bis-cluster complex 1,4-{AuRu3(CO)9(PPh3)(μ3-C2)}2C6H4 was obtained from Ru3(CO)10(NCMe)2 and 1,4-{(Ph3P)Au(C≡C)}2C6H4. The complexes Ru3(μ-H){μ3-C2C≡C[Ru(PP)Cp′]}(CO)9 [PP = (PPh3)2, Cp′ = Cp; PP = dppe, Cp′ = Cp*] were also obtained as minor by-products and synthesised independently from Ru(C≡CC≡CH)(PP)Cp′. A reaction between Co33-CC≡CC≡CAu(PPh3)}(μ-dppm)(CO)7 and Ru3(CO)12 afforded {(Ph3P)(OC)9AuRu3}C≡CC≡CC{Co3(μ-dppm)(CO)7} 7. Related complexes AuRu33-C2C≡[M(CO)2Tp]}(CO)9(PPh3) (M = Mo 8, W 9) were obtained from {Tp(OC)2M}≡CC≡C{Au(PPh3)}, while the mixed metal cluster complexes MoM2(C2Me)(CO)8Tp (M = Ru 13, Fe 14) were obtained from M(≡CC≡CSiMe3)(CO)2Tp (M = Mo, W) with Fe2(CO)9 and Ru3(CO)12, respectively. Reactions of the Mo carbyne complex with Co2(LL)(CO)6 [LL = (CO)2, μ-dppm] or nickelocene afforded complexes 15–17 in which Co2 and Ni2 fragments, respectively, had coordinated to the C≡C triple bond. XRD structural determinations of 7, 8, 14, 16 and {Tp(OC)2W}≡CC≡CC≡{Co3(μ-dppm)(CO)7} (18-W) are reported. In memoriam: F. Albert Cotton (1930–2007).  相似文献   

4.
The reaction of the [Ni6(CO)12]2− dianion with [Rh(COD)Cl]2 (COD = cyclooctadiene) in acetone affords a mixture of bimetallic Ni–Rh clusters, mainly consisting of the new [Ni7Rh3(CO)18]3− and [Ni8Rh(CO)18]3− trianions. A study of the reactivity of [Ni7Rh3(CO)18]3− led to isolation of the new [Ni3Rh3(CO)13]3− and [NiRh8(CO)19]2− anions. All these new bimetallic Ni–Rh carbonyl clusters have been isolated in the solid state as tetrasubstituted ammonium salts and have been characterised by elemental analysis, X-ray diffraction studies, ESI-MS and electrochemistry. The unit cell of the [NEt4]3[Ni7Rh3(CO)18] salt contains two orientationally-disordered ν2-tetrahedral [Ni7Rh3(CO)18]3− trianions with occupancy factors of 0.75 and 0.25. Besides, their inner Ni3Rh3 octahedral moieties show two cis sites purely occupied by Rh atoms, two trans sites purely occupied by Ni atoms and the remaining two cis sites are disordered Ni and Rh sites with respective occupancy fraction of 0.5. At difference from the parent [Ni7Rh3(CO)18]3−, the octahedral [Ni3Rh3(CO)13]3− displays an ordered distribution of Ni and Rh atoms in two staggered triangles. The [NiRh8(CO)19]2− dianion adopts an isomeric metal frame with respect to that of the [PtRh8(CO)19]2− congener. As a fallout of this work, new high-yield synthesis of the known [Ni6Rh3(CO)17]3− and [Ni6Rh5(CO)21]3−, as well as other currently-investigated bimetallic Ni–Rh clusters have been obtained.  相似文献   

5.
The reactions of half-sandwich diselenolate Mo and W complexes Cp#M(NO)(SePh)2 (M = Mo; Cp# = Cp (1a), MeCp (1b); M = W; Cp# = Cp (1c)) with (Norb)Mo(CO)4, Ni(COD)2 and Fe(CO)5 have been investigated. Treatment of (1a), (1b) and (1c) with (Norb)Mo(CO)4 in PhMe gave the bimetallic complexes: CpMo(NO)(-SePh)2Mo(CO)4 (2a), MeCpMo(NO)(-SePh)2Mo(CO)4 (2b) and CpW(NO)(-SePh)2Mo(CO)4 (2c) in moderate yields. Irradiation of (1a) and (1c) in the presence of Fe(CO)5 gave heterobimetallic complexes CpMo(CO)(-SePh)2Fe(CO)3 (3a) and CpW(NO)(-SePh)2Fe(CO)3 (3c). Ni(COD)2 reacts with two equivalents of (1a), (1b) and (1c) to give [CpMo(NO)(-SePh)2]2Ni (4a), [MeCpMo(NO)(-SePh)2]2Ni (4b) and [CpW(NO)(-SePh)2]2Ni (4c) in good yields. The new heterobimetallic complexes were characterized by i.r., 1H-n.m.r., 13C-n.m.r. and EI-MS spectroscopy.  相似文献   

6.
The reaction of the (borole)rhodium iodide complex [(η-C4H4BPh)RhI]4 with Cp*Li afforded the sandwich compound Cp*Rh(η-C4H4BPh) (4). The reactions of compound 4 with the solvated complexes [Cp*M(MeNO2)3]2+(BF 4 )2 gave triple-decker cationic complexes with the central borole ligand [Cp*Rh(η-η55-C4H4BPh)MCp*]2+(BF 4 )2 (M = Rh (5) or Ir (7)). The structure of complex 4 was established by X-ray diffraction. Published in Russian in Izvestiya Akademii Nauk. Seriya Khimicheskaya, No. 9, pp. 1525–1527, September, 2006.  相似文献   

7.
The impetus for this work was the structure of a trinuclear complex with two carbonyl groups showing incipient triple bridging - Cp2Rh3(CO)4?. Its structure, barrier to rotation of one Rh(CO)2? piece vs. the rest of the molecule, and the nature of the bridging carbonyl interaction are analyzed. Isolobal analogies form an interesting connection between this complex and a bridged isomer of the recently synthesized carbene complexes, Cp2Rh2(CO)2CR2, one isomer of Cp2Rh3(CO)3, and hypothetical carbyne complexes Cp2Rh2(CO)2CH+,?. A general bonding model for Cp2Rh2(μ-CO)2X complexes is constructed. The model, rich in geometrical detail, allows minima for the bridging carbonyl groups bending toward and away from the bonded ligand X.  相似文献   

8.
Decamethylmetallocenes Cp* 2M (M=Ru, Os) in the presence, of acids (CF3CO2H, CF3SO3H) give thepprotonation products [Cp* 2MH]+An. Broad-band UV photolysis of their solutions results in the formation of the salts of onium cations . A preparative procedure for the synthesis of these salts has been developed. Hydrolysis of the salts gives the carbinol Cp*MC5Me4CH2OH. Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 3, pp. 587–591. March, 1999.  相似文献   

9.
The photo-induced decarbonylation of CpCr(NO)(CO)2 (1a) in MeCN solution in the presence of R2E2 (E = S, Se; R = Me, Ph) leads to the formation of chalcogenolato-bridged binuclear complexes Cp2Cr2(NO)2(-ER)2 [E = S; R = Me (2a), Ph (3a); E = Se, R = Me (4a), Ph (5a)] while reactions between CpM(NO)(CO)2 [M = Mo (1b), W (1c)] and Ph2E2 (E = S, Se) result in mononuclear complexes CpM(NO)(EPh)2 [M = Mo; E = S (9b), Se (10b); M = W, E = S (11c), Se (12c)]. The corresponding reactions of (1b) with Me2E2 (E = S, Se) yielded both mono and binuclear complexes: CpMo(NO)(SeMe)2 (8b), Cp2Mo2(NO)2(-EMe)2 [E = S (6b), Se (7b)]. The new complexes have been characterized by i.r., 1H-, 13C-n.m.r. spectra and by electron-impact mass spectrometry.  相似文献   

10.
Summary.  The solid-state tautomerization of the hydrido-alkynyl derivatives [Cp *RuH(C&*CR)-(dippe)][BPh4] (Cp* = C5Me5; R = SiMe3, Ph, H; dippe = 1,2-bis-(diisopropylphosphino)-ethane) to their vinylidene isomers [Cp *Ru*C*CHR(dippe)][BPh4] was studied by IR spectroscopy. Characteristic isothermic αvs. t curves for each individual rearrangement process were recorded. Their shape, and hence the isomerization mechanism, depends strongly on the nature of the substituent R. The kinetic analysis of the above curves using the Avrami-Erofeev provided some mechanistic information about the isomerization process in the solid. Received July 7, 2000. Accepted August 29, 2000  相似文献   

11.
Summary.  Rh(III) polypyridine complexes ([Cp *Rh(ppy)(H2O)]2+; ppy = 2,2′-bipyridine, 2,2′-bipyridine-4,4′-dicarboxylate, o-phenanthroline, tetrahydro-4,4′-dialkyl-bis-oxazole) oxidize in organic or aqueous alkaline solution primary and secondary alcohols to aldehydes or ketones and are thereby reduced to the Rh(I) complexes Cp *Rh(ppy). The Rh(III) form can be regenerated byoxidants like pyruvate or oxygen, making the reaction quasi-catalytic. The reaction follows anautocatalytic pathway; hydrogen transfer from the α-CH2 group of an alcoholate complex [Cp *Rh(ppy)(OR)]+ to Cp *Rh(I)(ppy) is suggested to yield the Rh(II) intermediate Cp *Rh(ppy)H as the key and rate determining step. The knowledge of Rh(III)/Rh(I) redox potentials allows to estimate the thermodynamic driving force of the reaction which is not more than about 300 mV.  相似文献   

12.
The reaction of less than one equivalent of [Rh2Cl2(nbd)2] with [Ru4H(CO)12BH], which contains a semi-interstitial boron atom, yields the heterometallic boride clustercis-[Rh2Ru4H(CO)12(nbd)2B] which has been characterized by spectroscopic and X-ray diffraction methods. The cluster has an octahedral core, consistent with an 86 electron count. Deprotonation yields the conjugate basecis-[Rh2Ru4(CO)12(nbd)2B] which has been isolated and fully characterized as the [(Ph3P)2N]+ salt. There is little structural perturbation upon going fromcis-[Rh2Ru4H(CO)12(nbd)2B] tocis-[Rh2Ru4(CO)12(nbd)2B] and neither cluster shows a tendency for the formation of thetrans skeletal isomer in contrast to the analogous carbonyl clustercis-[Rh2Ru4(CO)16B]. If the reaction of [Rh2Cl2(nbd)2] with [Ru4H(CO)12BH] is allowed to proceed for 30 min and [R 3PAuCl] (R=Ph, C6H11, 2-MeC6H4) is then added, the clusterscis-[Rh2Ru4(CO)12(nbd)2B(AuPR3)] andcis-[Rh2Ru4(CO)14(nbd)B(AuPR3)] are formed in yields that are dependent upon the initial reaction period. The single crystal structures ofcis-[Rh2Ru4(CO)12(nbd)2B(AuPPh3)] andcis-[Rh2Ru4(CO)14(nbd)B(AuPPh3)] are reported. In contrast to their all-carbonyl analoguescis-[Rh2Ru4(CO)16B(AuPR 3)] (R=Ph or C6H11), the nbd derivatives do not undergocistrans skeletal isomerism.  相似文献   

13.
The new mixed-metal complex {anti-[(p-cymene)RuCl]-μ-[κ 2-P,P′;κ 1-P′′-(PPh2CH2)3CMe]-[AuCl]}PF6 and its cluster derivative {anti-[(p-cymene)RuCl]-μ-[κ 2-P,P′;κ 1-P′′-(PPh2CH2)3CMe]-[AuPt3(CO)3(PCy3)3]}(PF6)2 have been prepared and characterized. Notably, NMR spectroscopy and high resolution FT-ICR mass spectrometry, including a tandem mass spectrometric analysis, demonstrated the formation of these compounds that was also confirmed by single crystal X-ray diffraction analysis.  相似文献   

14.
Platinum electrocatalysts for fuel cells based on individual oxides Pt/SnO2 and Pt/TiO2 and their solid solutions Pt/Ti1−x M x O2 (M = Ru, Nb) and Pt/Sn1−x M′ x O2−δ(M′ = Sb, Ru) were prepared. The influence of the composition of the oxide supports on the activity of the supported platinum catalysts in electrooxidation of methanol and hydrogen in the presence of CO was studied. The prepared platinum catalysts supported on solid solutions of tin dioxide Sn1−x M x O2−δ(M = Sb, Ru; x = 0.4−0.9) and Ti1−x M x O2 (M = Ru, Nb; x = 0.7) exhibited higher tolerance to CO poisoning and higher activities for methanol electrooxidation than commercial Pt,Ru catalysts on carbon support. The use of the proposed oxide supported catalysts in hydrogen and direct methanol fuel cells improved their performances in comparison with that for the fuel cells with traditional Pt,Ru catalysts on carbon support.  相似文献   

15.
The homoleptic compound Ru(II)(L)2 where L = 4′-carboxylato-2,2′:6′,2″-terpyridine was employed as a bridge to link two [Mo2(O2CBu t )3]+ units in the formation of the title complex: [Mo2(O2CBu t )3]2-μ-Ru(II)L2] (2+) [BF4]2, which has been characterized by 1H-NMR, UV–vis and emission spectroscopy, MALDI-TOF-MS and cyclic voltammetry. The electronic structure of the complex has been investigated by density functional theory employing Turbomole on the model complex cation [Mo2(O2CH)3]2-μ-(Ru(II)L2)2+. The intense blue color of the cation arises from M2 δ to bridge/terpyridine charge transfer. This paper is dedicated to Prof. F. A. Cotton in memoriam.  相似文献   

16.
Binuclear ruthenium μ-oxocarboxylates of the nonelectrolyte type [Ru 2 III (μ-O)(μ-O2CR)2Py4(O2CR)2] (R = C(CH3)3, CH3, Ph, CH2Cl, CCl3, and CF3) were obtained and studied by electronic absorption and IR spectroscopy and FAB mass spectrometry. The carboxylate ions RCO 2 are symmetrically arranged (trans with respect to the bridging μ-O atom) and coordinated in a monodentate fashion. According to X-ray diffraction data, the crystals of [Ru 2 III (μ-O)(μ-O2CCF3)2Py4(O2CCF3)2] ⋅ (CH3)2CO are monoclinic; the unit cell parameters are a = 11.705(2) Å, b = 16.166(3) Å, c = 20.917(4) Å, β = 103.47(3)°, space group C2/c, Z = 4. The RCO 2 groups that are trans to the μ-O atom can be easily replaced by pyridine or acetonitrile. __________ Translated from Koordinatsionnaya Khimiya, Vol. 31, No. 11, 2005, pp. 803–809. Original Russian Text Copyright ? 2005 by Eremin, Belyaev, Simanova.  相似文献   

17.
Homoleptic mononuclear and binuclear ruthenium carbonyls Ru(CO) n (n = 3–5) and Ru2(CO) n (n = 8,9) have been investigated using density functional theory. Sixteen isomers are obtained. For Ru(CO)5, the lowest-energy structure is the singlet D 3h trigonal bipyramid. Similar to Os(CO)5, the distorted square pyramid isomer with C 2v symmetry lies ∼7 kJ·mol−1 higher in energy. For the unsaturated mononuclear ruthenium carbonyls Ru(CO)4 and Ru(CO)3, a singlet structure with C 2v symmetry and a C s bent T-shaped structure are the lowest-energy structures, respectively. The global minimum for the Ru2(CO)9 is a singly bridged (CO)4Ru(μ-CO)Ru(CO)4 structure. A triply bridged Ru2(CO)6(μ-CO)3 structure analogous to the known Fe2(CO)9 structure is predicted to lie very close in energy to the global minimum. For Ru2(CO)8, the doubly bridged C 2 structure is predicted to be the global minimum. For the lowest-energy structures of M2(CO) n (M = Fe, Ru, Os, n = 9,8), it is found that both iron and ruthenium are favored to form structures containing more bridging carbonyl groups, while osmium prefers to have structures with less bridging carbonyl groups. The study of dissociation energy shows that the dissociation of Ru2(CO)9 into the mononuclear fragments Ru(CO)5 + Ru(CO)4 is a less energetically demanding process than the dissociation of one carbonyl group from Ru2(CO)9 to give Ru2(CO)8.  相似文献   

18.
Reactions of [CpRhCl2]2 (Cp = η5-C5Me5 (Cp*), η5-C5Me4Et (Cp′), η5-C5H3 t Bu2(Cp″)) with in situ generated H2Se give triangular [Cp3Rh3Se2]2+ clusters. These clusters were isolated as PF6 salts and characterized with ESI-MS, 77Se, 1H NMR and DFT calculations. [Cp3Rh3Se2] undergoes two reversible two-electron reduction steps. Quantum-chemical calculations reveal non-trivial bonding situation in the cluster core and changes in the hapticity of the Cp* ligand upon reduction. Crystal structure of [Cp 3 * Rh3Se2][Re2(μ-Cl)3(CO)6]Cl · 3.3H2O has been determined.  相似文献   

19.
Reaction of the heteronuclear cluster RuOs3(μ−H)2(CO)13, 1, with diphenylacetylene afforded the tetrahedral cluster RuOs3(μ−H)23121−C2Ph2)(CO)11, 2, in good yield. Spectroscopic evidence suggests that 2 exist as two isomers in solution.  相似文献   

20.
Reaction of 2-(phenylazo)pyridine (pap) with [Ru(PPh3)3X2] (X = Cl, Br) in dichloromethane solution affords [Ru(PPh3)2(pap)X2]. These diamagnetic complexes exhibit a weakdd transition and two intense MLCT transitions in the visible region. In dichloromethane solution they display a one-electron reduction of pap near − 0.90 V vs SCE and a reversible ruthenium(II)-ruthenium(III) oxidation near 0.70 V vs SCE. The [RuIII(PPh3)2(pap)Cl2]+ complex cation, generated by coulometric oxidation of [Ru(PPh3)2(pap)Cl2], shows two intense LMCT transitions in the visible region. It oxidizes N,N-dimethylaniline and [RuII(bpy)2Cl2] (bpy = 2,2′-bipyridine) to produce N,N,N′,N′-tetramethylbenzidine and [RuIII(bpy)2Cl2]+ respectively. Reaction of [Ru(PPh3)2(pap)X2] with Ag+ in ethanol produces [Ru(PPh3)2(pap)(EtOH)2]2+ which upon further reaction with L (L = pap, bpy, acetylacetonate ion(acac) and oxalate ion (ox2−)) gives complexes of type [Ru(PPh3)2(pap)(L)]n+ (n = 0, 1, 2). All these diamagnetic complexes show a weakdd transition and several intense MLCT transitions in the visible region. The ruthenium(II)-ruthenium(III) oxidation potential decreases in the order (of L): pap > bpy > acac > ox2−. Reductions of the coordinated pap and bpy are also observed.  相似文献   

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