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1.
Four half-sandwich cobalt complexes, CpCo(2-PyS)2 (2), CpCo(2-PyS)2 · HI (3), CpCo(2-PyS) (4-PyS) (4), (CpCo)2(μ-PhS)2(μ-2-PyS)I (5) [Cp = pentamethylcyclopentadienyl, 2-PyS = 2-pyridinethiolate, 4-PyS = 4-pyridinethiolate, PhS = benzenethiolate] were successfully synthesized by the reactions of 2-pyridinethione, lithium 4-pyridinethiolate and lithium benzenethiolate with CpCo(2-PyS)I (1), respectively. Complexes 2 and 3 have the structures with two 2-pyridinethiolates ligands coordinated to the cobalt atom. Two different pyridinethiolates ligands can be identified in complex 4. The molecular structure of 5 consists of two Cp-Co fragments, which are triply bridged by three sulfur atoms from different ligands. The molecular structures of 3 and 5 were determined by X-ray crystallographic analysis. All the complexes have been well characterized by elemental analysis, NMR and IR spectra.  相似文献   

2.
Two hetero-binuclear complexes [CpCoS2C2(B9H10)][Rh(COD)] (2a) and [CpCoSe2C2(B10H10)][Rh(COD)] (2b) [Cp = η5-pentamethylcyclopentadienyl, COD = cyclo-octa-1,5-diene (C8H12)] were synthesized by the reactions of half-sandwich complexes [CpCoE2C2(B10H10)] [E = S (1a), Se (1b)] with low valent transition metal complexes [Rh(COD)(OEt)]2 and [Rh(COD)(OMe)]2. Although the reaction conditions are the same, the structures of two products for dithiolato carborane and diselenolato carborane are different. The cage of the carborane in 2a was opened; However, the carborane cage in 2b was intact. Complexes 2a and 2b have been fully characterized by 1H, 11B NMR and IR spectroscopy, as well as by elemental analyses. The molecular structures of 2a and 2b have been determined by single-crystal X-ray diffraction analyses and strong metal-metal interactions between cobalt and rhodium atoms (2.6260 Å (2a) and 2.7057 Å (2b)) are existent.  相似文献   

3.
The 16-electron half-sandwich complexes CpRh[E2C2(B10H10)] (E = S, 1a; Se, 1b) react with [Ru(COD)Cl2]x under different conditions to give different types of heterometallic complexes. When the reactions were carried out in THF for 24 h, the binuclear Rh/Ru complexes [CpRh(μ-Cl)2(COD)Ru][E2C2(B10H10)] (E = S, 2a; Se, 2b) bridged by two Cl atoms and the binuclear Rh/Rh complexes (CpRh)2[E2C2(B10H10)] (E = S, 3a; Se, 3b) with direct Rh-Rh bond can be isolated in moderate yields. [Ru(COD)Cl2] fragments in 2a and 2b have inserted into the Rh-E bond. If the [Ru(COD)Cl2]x was reacted with 1a in the presence of K2CO3 in methanol solution, the product [CpRh(COD)]Ru[S2C2(B10H10]] (4a), K[(μ-Cl)(μ-OCH3)Ru(COD)]4 (5a) and 3a were obtained. The B(3)-H activation in complex 4a was found. However, when the reaction between 1b and [Ru(COD)Cl2]x was carried out in excessive NaHCO3, the carborane cage opened products {CpRh[S2C2(B9H10)]}Ru(COD) (6b), {CpRh[S2C2(B9H9)]}Ru(COD)(OCH3) (7b) and 3b were obtained. All complexes were fully characterized by their IR, 1H NMR and elemental analyses. The molecular structures of 2a, 2b, 3b, 4a, 5a, and 7b have been determined by X-ray crystallography.  相似文献   

4.
A new route was used to synthesize half-sandwich rhodium complexes containing both N-heterocyclic carbenes (NHC) and carborane ligands. The rhodium carbene complexes CpRh(L)[S2C2(B10H10)] (Cp = pentamethylcyclopentadienyl, L = 1,3-dimethylimidazolin-2-ylidene; 4) can be obtained from the reaction of CpRh(L)Cl2 (2) with Li2S2C2(B10H10) or from the reaction of CpRh[S2C2(B10H10)] (3) with silver-NHC complex prepared by direct reaction of an imidazolium precursor and Ag2O. Complexes 2 and 4 were characterized by IR, NMR spectroscopy, element analysis and X-ray structure analyses.  相似文献   

5.
Reaction of 3,4-dimethylphospholylthallium (Tl-1) with [CpMCl2]2 (M = Rh, Ir) leads to the formation of the dimeric species [(CpM)2(Me2C4H2P)3]+2 and 3 with bridging μ-η11-phospholyl ligands. The phosphametallocenium sandwich complexes [CpM(Me2C4(SiMe3)2P)]+7 (M = Rh) and 8 (M = Ir) could be obtained from the reaction of [CpMCl2]2 and the 2,5-bis(trimethylsilyl)-1-trimethylstannylphosphole 6, with the bulky trimethylsilyl groups preventing the phosphole from η1- and enforcing a η5-coordination. The structures of phospharhodocenium cation 7 and a byproduct 9 containing a phosphairidocenium moiety could be determined by X-ray diffraction.  相似文献   

6.
Reactions of [M(Cp)Cl(μ-Cl)]2 (M = Ir(1a); M = Rh(1b)) with tridentate ligands tpt (tpt = 2,4,6-tripyridyl-1,3,5-triazine) gave the corresponding trinuclear complexes [M3(Cp)33-4-tpt-κN)Cl6] (M = Ir(2a); M = Rh(2b)), which can be converted into hexanuclear complexes [M6(Cp)63-4-tpt-κN)2(μ-Cl)6](O3SCF3)6 (M = Ir(3a); M = Rh(3b)) by treatment with AgO3SCF3, respectively. X-ray of 3b revealed that each of six pentamethylcyclopentadienyl metal moieties was connected by two μ-Cl-bridged atoms and a tridentate ligand to construct a cation triangular metallo-prism cavity with the volume of about 273 Å3 based on the distance of the two triazine moieties is 3.62 Å.  相似文献   

7.
N-heterocyclic bis-carbene ligand (bis-NHC) which was derived from 1,1′-diisopropyl-3,3′-ethylenediimidazolium dibromide (L·2HBr) via silver carbene transfer method, reacted with [(η6-p-cymene)RuCl2]2 and [CpMCl2]2 (Cp = η5-C5Me5, M = Ir, Rh) respectively, afforded complexes [(η6-p-cymene)RuCl2]2(L) (1), [CpIrCl2]2(L) (2) and [CpRhCl(L)][CpRhCl3] (3). When [CpIrCl2]2 was treated with 2 equiv AgOTf at first, and then reacted with bis-NHC ligand, [CpIrCl(L)]OTf (4) was obtained. The molecular structures of complexes 1-4 were determined by X-ray single crystal analysis, showing that 1 and 2 adopted bridging coordination mode, 3 and 4 adopted chelating coordination mode. All of these complexes were characterized by 1H, 13C NMR spectroscopy and element analysis.  相似文献   

8.
Chalcogen-stabilized dimolybdaboranes 3-5 (3: [(CpMo)2B4H5Se(Ph)], 4: [(CpMo)2B4H3Se2(SeCH2Ph)] and 5: [(CpMo)2B3H6(BSR)(μ-η1-SR)] (R = 2,6-(tBu)2-C6H2OH)) have been isolated from the mild pyrolysis of dichalcogenide ligands, RE-E‘R (R = Ph: E = S, E‘ = Se; R = CH2Ph, [2,6-(tBu)2-C6H2OH]: E = E‘ = Se, S) and [(CpMo)2B4H8], 2, an intermediate generated from the reaction of [CpMoCl4] (1) (Cp = η5-C5Me5), with [LiBH4.thf]. The geometry of [(CpMo)2B4H5Se(Ph)] is similar to that of [(CpMo)2B5H9], in which one BH3 unit on the open face is replaced by a triple bridged selenium atom. All the compounds have been characterized in solution by 1H, 11B, 13C NMR and IR spectroscopy and elemental analysis. The structural types were unequivocally established by X-ray crystallographic analysis of compounds 3-5.  相似文献   

9.
The one-pot reaction of [CpMo(NO)(CO)2] with elemental sulfur and dimethyl acetylenedicarboxylate (C2Z2 (Z = COOMe)) gave the [2+2] cycloadduct of the mononuclear molybdenum dithiolene complex [CpMo(NO)(S2C2Z2)(C2Z2)] (1), and some binuclear complexes:[CpMo(NO)(S2C2Z2)]2 (2), [Cp2Mo2(NO)2S2(S2C2Z2)] (3) and [CpMo(NO)S2]2 (4).The reaction of [CpMo(NO)(Cl)(μ-Cl)]2 with OC{S2C2(COOMe)2} in the presence of sodium methoxide also produced complex 2 and the paramagnetic CpMo bisdithiolene complex [CpMo(S2C2Z2)2] (5, Z = COOMe).The structures of complexes 1-5 were determined by X-ray crystal structure analysis.The nitrosyl ligands of complexes 1-4 showed a linear coordination to the molybdenum center (the Mo-N-O bond angles = 169-174°), and their N-O bond lengths were 1.17-1.20 Å.In the binuclear complexes 2-4, two nitrosyl ligands were placed at cis-position.Complexes 1 and 2 were characterized by cyclic voltammetry and spectroelectrochemistry (visible and IR). The electrochemical reduction of the dimeric complex 2 formed the monomeric dithiolene complex[CpMo(NO)(S2C2Z2)] (X) whose lifetime was several minutes. When the anion X was electrochemically oxidized, the coordinatively unsaturated species X was generated, but it was immediately dimerized to afford the original dimeric complex 2. The reduction of the complex 1 included the elimination of the bridged DMAD moiety (C2Z2) to give the anion X.  相似文献   

10.
Self-assembly of a novel class of bis-imine-cyclometalated macrocycles [(CpIr)2(Ph-NC-Ph-CN-Ph)]2(4,4′-bipyridine)2·(OTf)4 (3a) and [(CpIr)2(Me-NC-Ph-CN-Me)]2(4,4′-bipyridine)2·(OTf)4 (3b) was directed by double-site C-H activations of aromatic bis-imine substrates. Two synthetic routes were established, using either (i) binuclear cyclometalated complexes (CpIr)2L1Cl2 (1a) and (CpIr)2L2Cl2 (1b) or (ii)4,4′-bipyridine(bpy)-bridged complex (CpIrCl2)2(bpy) (2) as starting materials. All the products were characterized by IR, 1H NMR and EA. Isomers were found in macrocyclic complexes, which were thermodynamically stable from reversible transformation in days. Highly robust structure of the cyclometalated macrocycles was indicated by the existence of stable isomer pairs. One isomer of 3b was determined by single-crystal X-ray diffraction. It was a rare case for half-sandwich metallosupramolecular macrocycles that weak interactions between macrocycles and OTf ions were fully captured in detail, and were demonstrated to be essential for the maintenance of tunnel structures of macrocycles in crystal packing.  相似文献   

11.
Ligand effects on the catalytic activity [and norbornene (NBE) incorporation] for both ethylene polymerization and ethylene/NBE copolymerization using half-titanocenes (titanium half-sandwich complexes) containing ketimide ligand of type Cp′TiCl2[NC(R1)R2] [Cp′ = Cp (1), C5Me5 (Cp, 2); R1,R2 = tBu,tBu (a), tBu,Ph (b), Ph,Ph (c)]-methylaluminoxane (MAO) catalyst systems have been investigated. CpTiCl2[NC(tBu)Ph] (1b) CpTiCl2(NCPh2) (1c), and CpTiCl2(NCPh2) (2c) were prepared and identified; the structure of CpTiCl2(NCPh2) (2c) was determined by X-ray crystallography. The catalytic activity for ethylene polymerization increased in the order: 1a > 1b > 1c, suggesting that an electronic nature of the ketimide ligand affects the activity. However, molecular weight distributions for resultant (co)polymers prepared by 1b,c and by 2c-MAO catalyst systems were bi- or multi-modal, suggesting that the ketimide substituent plays a key role in order for these (co)polymerizations to proceed with single catalytically-active species. CpTiCl2(NCtBu2) (1a) exhibited both remarkable catalytic activity and efficient NBE incorporation for ethylene/NBE copolymerization.  相似文献   

12.
Reactions of a sulfido- and thiolato-bridged diiridium complex [(CpIr)2(μ-S)(μ-SCH2CH2CN)2] (Cp = η5-C5Me5) with [(CpMCl)2(μ-Cl)2] (M = Ir, Rh) afforded the sulfido- and thiolato-bridged trinuclear clusters [(CpM)(CpIr)23-S)(μ2-SCH2CH2CN)22-Cl)]Cl (4: M = Ir, 5: M = Rh). Upon treatment with XyNC (Xy = 2,6-Me2C6H3) in the presence of KPF6 at 60 °C, 4 was converted into a mixture of a mononuclear XyNC complex [CpIr(SCH2CH2CN)(CNXy)2][PF6] (6) and a dinuclear XyNC complex [{CpIr(CNXy)}2(μ-S)(μ-SCH2CH2CN)][PF6] (7). On the other hand, reactions of 4 and 5 with methyl propiolate in the presence of KPF6 at 60 °C resulted in the formation of a cyclic trimer of the alkyne 1,3,5-C6H3(COOMe)3 as the sole detectable organic product. The reactions proceeded catalytically with retention of the cluster cores of 4 and 5, whereby the activity of the former was much higher than that of the latter.  相似文献   

13.
Proto-desilylation of 1-(Me3SiCC)-1′-{Cp(dppe)RuCC}Fc′ (1) afforded the corresponding ethynyl derivative 2, from which the green Co2(μ-dppm)n(CO)8−2n (n = 0, 1) adducts 3 and 4 were obtained. Replacement of the ethynyl proton in reactions between 2 and AuCl(PPh3), Hg(OAc)2 or FeCl(dppe)Cp gave complexes 1-(RCC)-1′-{Cp(dppe)RuCC}Fc′ [R = Au(PPh3) 5, 1/2Hg 6, Fe(dppe)Cp8]; the latter gave bis-vinylidene 9 with MeI, characterised (as was 2) by a single crystal X-ray study. Oxidative coupling of 2 (CuCl/tmeda/acetone, air) gave diyne 10, while coupling of 5 with Co33-CBr)(μ-dppm)(CO)7 afforded 1-{Cp(dppe)RuCC}-1′-{(OC)7(μ-dppm)Co33-CCC)}Fc′ (11). Cyclic voltammetric measurements indicated that there was no significant electronic coupling between the end-groups through the ferrocene centre in any of these compounds.  相似文献   

14.
The reactions of tri(bis(ethyl)amino)phosphorus ylide (Et2N)3PCH2 with cyclopentadienyl (Cp) metal (V) tetrachloride CpMCl4 (M = Nb 1; Ta 3) and pentamethylcycopentadienyl (Cp) metal (V) tetrachloride CpMCl4 (M = Nb 2; Ta 4) were investigated. The hexa-coordinate ylide adducts complexes 5 (CpNbCl4(H2CP(NEt2)3)), 6 (CpNbCl4(H2CP(NEt2)3)) and 8 (CpTaCl4(H2CP(NEt2)3)) with pseudo-octahedral geometry were structurally analyzed with X-ray diffraction. Compound 4 (CpTaCl4) reacted with three molar equivalent of phosphorus ylide to form one ionic complex 9 ([H3C-P(NEt2)3][CpTaCl5]) which was also structurally analyzed with X-ray diffraction. The possible formation mechanism of compound 9 has been discussed.  相似文献   

15.
Two binuclear complexes [CpM(Cl)CarbS]2 (Cp = η5-C5Me5, M = Rh (1a), CarbS = SC2(H)B10H10, Ir (1b)) were synthesized by the reaction of LiCarbS with the dimeric metal complexes [CpMCl(μ-Cl)]2 (M = Rh, Ir). Four mononuclear complexes CpM(Cl)(L)CarbS (L = BunPPh2, M = Rh (2a), Ir (2b); L = PPh3, M = Rh (4a), Ir (4b)) were synthesized by reactions of 1a or 1b with L (L = BunPPh2 (2); PPh3 (4)) in moderate yields, respectively. Complexes 3a, 3b, 5a, 5b were obtained by treatment of 2a, 2b, 4a, 4b with AgPF6 in high yields, respectively. All of these compounds were fully characterized by IR, NMR, and elemental analysis, and the crystal structures of 1a, 1b, 2a, 2b, 4a, 4b were also confirmed by X-ray crystallography. Their structures showed 3a, 3b and 5a, 5b could be expected as good candidates for heterolytic dihydrogen activation. Preliminary experiments on the dihydrogen activation driven by these half-sandwich Rh, Ir complexes were done under mild conditions.  相似文献   

16.
Pyrolysis of an in-situ generated intermediate, produced in the reaction of [CpMoCl4], 1, (Cp = η5-C5Me5) with [LiBH4·THF], with an excess of difuryl ditelluride in toluene at 90 °C yielded syn and anti isomers of [CpMo(O)(μ-Te)]2 (2, 3) and [Cp2Mo2O2(μ-O)(μ-Te)] (4, 5). In a similar fashion, dibenzyl diselenide yielded syn and anti isomers of [CpMo(O)(μ-Se)]2 (6, 7), along with the known nido-[(CpMo)2B4H8Se2]. Note that in parallel with 2-7, [(CpMo)2B5H9] was isolated as the major product in both cases. Compounds 2-7 have been isolated in modest yield as orange to brown crystalline solids. All the new compounds have been characterized in solution by mass, IR, 1H, 13C, 77Se and 125Te NMR spectroscopy, and the structural types were unequivocally established by crystallographic analysis of 2-4 and 7.  相似文献   

17.
Ruthenium piano-stool complexes incorporating the new bidentate aminoalkylphosphine ligand 1,2-bis(dipyrrolidin-1-ylphosphino)ethane (dpyrpe, I) or its monodentate counterpart bis(pyrrolidin-1-yl)methylphosphine (pyr2PMe, II) have been prepared, [(C5R5)RuCl(PP)] (R = Me and PP = dpyrpe, 1; R = Me and PP = (pyr2PMe)2, 2; R = H and PP = dpyrpe, 3). Complexes 2 and 3 have been characterized by X-ray crystallography. Complexes 1 and 2 react with NaBAr4f in the presence of ligand L to yield [CpRu(L)(dpyrpe-κ2P)][BArf4] (L = MeCN, 4a; CO, 4b; N2, 4c) and [CpRu(L)(pyr2PMe)2][BAr4f] (L = MeCN, 5a; CO, 5b; N2, 5c). Complex 4a was crystallographically characterized. The CO complexes 4b and 5b were examined using IR spectroscopy in an attempt to establish the electron-donating capabilities of I and II. Complex 1 oxidatively adds H2 in the presence of NaBAr4f to yield the Ru(IV) dihydride [CpRuH2(dpyrpe-κ2P)][BAr4f], 7.  相似文献   

18.
A series of titanocene(III) alkoxides L2Ti(III)OR where L = Cp, R = Et(1b), tBu(1a), 2,6-Me2C6H3(1c), 2,6-tBu2-4-Me-C6H2(1d), or L = Cp*, R = Me(2e), tBu(2a), Ph(2f) was synthesized and subjected to reaction with [CpM(CO)3]2 [M = Mo, W], [CpRu(CO)2]2, and Co2(CO)8. The Ti(III) precursors 1a, 1c, 2a, 2e, and 2f reacted with [CpM(CO)3]2 [M = Mo, W] to form heterobimetallic complexes L2Ti(OR)(μ-OC)(CO)2MCp [M = Mo, W], of which Ti and M are linked by an isocarbonyl bridge. Reactions of these Ti(III) complexes with Co2(CO)8 resulted in formation of Ti-Co1 heterobimetallic complexes, from 2a, 2e, or 2f, or Ti-Co3 tetrametallic complexes, Cp2Ti(OtBu)(μ-OC)Co3(CO)9 from 1a, 1b, or 1c. The products were characterized by NMR, IR, and X-ray crystallography. Reaction mechanisms were proposed from these results, in particular, from steric/electronic effects of titanium alkoxides.  相似文献   

19.
Hydrogenation of cyclohexene with 0.1 mol% of the (nitrosyl)ruthenium catalyst [CpRu(NO)(C6H5)2] (1; Cp = η5-C5(CH3)5) under 1.0 MPa of H2 in water at 90 °C for 13 h afforded cyclohexane in 94% yield. The nitrosyl-bridged dinuclear complex [CpRu(μ2-NO)2RuCp] (2) and the mononuclear cyclohexene complex [CpRu(NO)(η2-C6H10)] (3), which also serve as catalyst precursors, have been obtained from the reaction mixture. X-ray crystallographic analyses of 2 and 3 have revealed that the bridging nitrosyl ligands in 2 form an almost planar Ru2N2 four-membered ring with the Ru–Ru distance of 2.5366(5) Å, whereas the nitrosyl ligand in 3 is linear. On the other hand, a ruthenium complex without a nitrosyl ligand [CpRu(CH3CN)3][OSO2CF3] proved to be less effective for this hydrogenation.  相似文献   

20.
The synthesis, characterization and chemistry of novel η3-allyl metal complexes (M = Ir, Rh) are described. The structures of compounds (C5Me4H)Ir(PPh3)Cl2 (1), (C5Me4H)Ir(PPh3)(η3-1-methylallyl)Br (3a), (C5Me4H)Ir(η4-1,3,5-hexatriene) (8), and (C5Me5)Rh(η3-1-ethylallyl)Br (5d) have been determined by X-ray crystallography. Structural comparisons among these complexes are discussed. It is found that the neutral metal allylic complex [CpIrCl(η3-methylallyl)] (5) ionizes in polar solvents to give [CpIr(η3-methylallyl)]+Cl (6) and reaches equilibrium (5 ? 6) at room temperature. Addition of tertiary phosphine ligands to neutral complexes such as [CpIr(η3-methylallyl)Cl], results in the formation of stable ionic phosphine adducts. Factors such as solvent, length of carbon chain, temperature and light are discussed with respect to the formation, stability and structure of the allyl complexes.  相似文献   

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