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1.
[Ir(η5-C5Me5)(C8H4S8)] (1) [ = 2-{(4,5-ethylenedithio)-1,3-dithiole-2-ylidene}-1,3-dithiole-4,5-dithionate(2−)] was reacted with iodine in dichloromethane to afford one-electron- and two-electron-oxidized species [IrI(η5-C5Me5)(C8H4S8)] (2), [IrI(η5-C5Me5)(C8H4S8)](I3) (3) and [IrI(η5-C5Me5)(C8H4S8)](I5) (4). The oxidized species exhibit electrical conductivities of (1.1-5.0) × 10−6 S cm−1 measured for compacted pellets at room temperature. The X-ray crystal structures of the two-electron-oxidized complexes 3 and 4 revealed the Ir-I bonds for both of them and the presence of for 3 and ions for 4 as the counter anions. They have many S-S and S-I non-bonding contacts to form two-dimensional molecular interaction sheets in the solid state.  相似文献   

2.
[Pt5(μ-CO)5(CO)L4] (L = PPh31, PPh2Bz 2, AsPh33, PEt34, PCy35) have been synthesized by reacting [Pt3(μ-CO)3(PR3)3] with H2O2 (1 and 2), by reduction of cis-[PtCl2(CO)(PEt3)] with Zn dust (4), and by the Zn reduction of [Pt3(μ-CO)3(PCy3)3] in the presence of [PtCl2(CH3CN)2] (5). Complex 5 has not been observed previously and has been characterized by X-ray crystallography. Oxidation of the phosphine ligands with H2O2 is a new way to synthesize 1 and 2. The first complete NMR characterization of these complexes has also been achieved, and showed that these pentanuclear cluster complexes exhibit similar stereochemistries in solution and in the solid state. The observed 1JPt-Pt values do not have any correlation with the corresponding bond lengths, again pointing out the irregular behaviour of such parameter in Pt complexes.  相似文献   

3.
The reaction of cyanamide and its derivatives with the (η5-C5H5)Mn(CO)2(THF) and (η5-C5H4CH3)Mn(CO)2(THF) complexes affords the cyanamide substituted complexes of types (η5-C5H5)Mn(CO)2(NCN(R′)(R″)) (2a-d) and (η5-C5H4CH3)Mn(CO)2(NCN(R′)(R″)) (3a-e). All complexes were characterized by spectroscopy (1H, 13C NMR, IR), elemental and mass spectroscopy analysis. Complex 2b5-C5H5)Mn(CO)2(NCN(CH3)2) was additionally examined by single crystal X-ray structure determination.  相似文献   

4.
The bimetallic cyano-bridged [(η5-C5H5)(PPh3)2Ru(μ-CN)Ru(PPh3)25-C5H5)][PF6] (1) was prepared by reaction of [(η5-C5H5)(PPh3)2RuCl] with N,N′-bis(cyanomethyl)ethylenediamine. The single crystal structure determined by X-ray diffraction showed crystallization on the triclinic P1 space group with a perfect alignment of the cyanide bridges. This accentric crystallization was explored having in view the NLO properties at the macroscopic level, determined by the Kurtz Powder technique. Besides the very low efficiency values for the second harmonic generation, the value obtained for the bimetallic complex 1 showed to be higher than one of the parent complex [(η5-C5H5)(PPh3)2RuCN] (2).  相似文献   

5.
[Ir(η5-C5Me5)(C3S5)] [C3S52− = 4,5-disulfanyl-1,3-dithiole-2-thionate(2−)] was prepared by a reaction of [NMe4]2[C3S5] with [Ir(η5- C5Me5)Cl2]2 in ethanol. It was reacted with bromine to afford a paramagnetic species [IrBr(η5-C5Me5)(C3S5)] with the Ir-Br bond and in the one-electron-oxidized state, and a diamagnetic dinuclear species [IrBr(η5-C5Me5)(μ-C2S4)IrBr(η5-C5Me5)]. ESR spectra for the one-electron-oxidized species in solution are discussed. The X-ray crystal structural analysis for the latter complex revealed the geometry consisting of dinuclear IrBr(η5-C5Me5) moieties bridged by the C2S42− ligand.  相似文献   

6.
The metal-sulfur bonding present in the transition metal-thiolate complexes CpFe(CO)2SCH3, CpFe(CO)2StBu, CpRe(NO)(PiPr3)SCH3, and CpRe(NO)(PPh3)SCH3 (Cp = η5-C5H5) is investigated via gas-phase valence photoelectron spectroscopy. For all four complexes a strong dπ-pπ interaction exists between a filled predominantly metal d orbital of the [CpML2]+ fragment and the purely sulfur 3pπ lone pair of the thiolate. This interaction results in the highest occupied molecular orbital having substantial M-S π antibonding character. In the case of CpFe(CO)2SCH3, the first (lowest energy) ionization is from the Fe-S π orbital, the next two ionizations are from predominantly metal d orbitals, and the fourth ionization is from the Fe-S π orbital. The pure sulfur pπ lone pair of the thiolate fragment is less stable than the filled metal d orbitals of the [CpFe(CO)2]+ fragment, resulting in a Fe-S π combination that is higher in sulfur character than the Fe-S π combination. Interestingly, substitution of a tert-butyl group for the methyl group on the thiolate causes little shift in the first ionization, in contrast to the shift observed for related thiols. This is a consequence of the delocalization and electronic buffering provided by the Fe-S dπ-pπ interaction. For CpRe(NO)(PiPr3)SCH3 and CpRe(NO)(PPh3)SCH3, the strong acceptor ability of the nitrosyl ligand rotates the metal orbitals for optimum backbonding to the nitrosyl, and the thiolate rotates along with these orbitals to a different preferred orientation from that of the Fe complexes. The initial ionization is again the M-S π combination with mostly sulfur character, but now has considerable mixing among several of the valence orbitals. Because of the high sulfur character in the HOMO, ligand substitution on the metal also has a small effect on the ionization energy in comparison to the shifts observed for similar substitutions in other molecules. These experiments show that, contrary to the traditional interpretation of oxidation of metal complexes, removal of an electron from these metal-thiolate complexes is not well represented by an increase in the formal oxidation state of the metal, nor by simple oxidation of the sulfur, but instead is a variable mix of metal and sulfur content in the highest occupied orbital.  相似文献   

7.
Reaction of [Pt2(μ-S)2(PPh3)4] with a number of transition metal-iodo complexes leads to the formation of the cationic iodo analogue [Pt2(μ-S)(μ-I)(PPh3)4]+, identified using electrospray ionisation mass spectrometry (ESI MS). Synthetic routes to this complex were developed, using the reaction of [Pt2(μ-S)2(PPh3)4] with either [PtI2(PPh3)2] or elemental iodine. The complex was characterised by NMR spectroscopy, ESI MS and an X-ray structure determination, which reveals the presence of a planar, disordered {Pt2SI}+ core. Monitoring the iodine reaction by ESI MS allows the identification of various iodine species, including the short-lived intermediate [Pt2(μ-S)2(PPh3)4I]+, which allows a mechanism for the reaction to be proposed.  相似文献   

8.
The new thiocyanato- (5) and azido- (6) complexes were synthesized and studied under their Fe(II) and Fe(III) redox states. For the first time among the various [Fe(η5-C5Me5)(η2-dppe)]-based cationic radicals studied so far, the magnitude and spatial orientation of the g-tensor diagonal values were experimentally determined for 5[PF6]. These data are in good agreement with those issued from a DFT modelization. The changes experienced by the electronic structure of the Fe(II) complexes subsequent to oxidation are reminiscent of these previously observed for the known arylalkynyl analogues, albeit some differences can be pointed out. Thus, the differences observed in the 1H NMR spectra of 5[PF6] and 6[PF6] are attributed to a slower electronic spin relaxation and to the differently oriented magnetic anisotropy. The sizeable spin density evidenced by DFT on the terminal atom of the ligands of the Fe(III) complexes renders these new paramagnetic metallo-ligands quite appealing for accessing larger polynuclear molecular assemblies with magnetically interacting centers.  相似文献   

9.
The reactions of the triangulo-cluster [Pt3(μ-CO)3(PtBu3)3] with activated olefins and alkynes have been examined under various conditions. At low temperature, cluster fragmentation occurs yielding the Pt(0) complexes [Pt(CO)(PtBu3)(olefin)] (olefin = maleic anhydride and maleimide), while di(tert-butyl)acetylenedicarboxilate reacts quantitatively giving the dinuclear Pt(0) complex [Pt2(CO)2(PtBu3)2(μ-η22-tBuO2CCCCO2tBu)]. At higher temperature and in the presence of alkyne in large excess, the latter dimer converts quantitatively to the monomers [Pt(CO)(PtBu3)(alkyne)] (alkyne = CF3CCCF3 and tBuO2CCCCO2tBu). The stereochemistry of these complexes has been established by NMR and IR measurements. The structure of [Pt(CO)(PtBu3)(CF3CCCF3)] was confirmed by X-ray diffraction analysis.  相似文献   

10.
The determination of the solid state structure of Cp*Ru(2,4-dimethyl-η5-pentadienyl) (1), where Cp* = pentamethylcyclopentadienyl, fills the gap in the series of previously established structures of closely related compounds. Compound 1 does not exhibit the ideal CS symmetry and its conformation is intermediate between the CS-synperiplanar eclipsed and CS-antiperiplanar arrangements of the ligands. Density functional theory studies indicate that the CS-synperiplanar eclipsed, CS-antiperiplanar, and intermediate conformations of 1 and Cp*Rh(2,4-dimethyl-η5-pentadienyl)+ (2) do not differ by more than a few tenths of 1 kcal/mol. The geometrical features of cation 2 are similar to those of 1, and in both complexes the pentadienyl ligands are not planar. The metal-carbon distances to the Cp* ligands in 1 and 2 are comparable, while the metal-carbon distances to the pentadienyl moiety are somewhat shorter in the Ru complex. A study of the conformational flexibility of the Cp* ligand in 5610 organometallic complexes showed that it usually shields the central metal by 36.2(10)%, provided the metal-centroid(Cp*) distances are normalized to 2.28 Å. The corresponding values in 1 and 2 are 37.2% and 37.4%, respectively.  相似文献   

11.
Novel two iridium terphenyl complexes were prepared and their structures were characterized crystallographically. The reaction of [Ir(cod)2]BF4 with p-terphenyl (p-tp) in CH2Cl2 was carried out to afford dinuclear Ir(I) complex {[Ir2(p-tp)(cod)2](BF4)2 · 2CH2Cl2}3 (cod=1,5-cyclooctadiene) (1 · 2CH2Cl2), whereas the reaction of the intermediate [Ir(η5-C5Me5)(Me2CO)3]3+ in Me2CO with m-terphenyl (m-tp) was done to provide mononuclear Ir(III) complex [Ir(m-tp)(η5-C5Me5)](BF4)2 (2). In complex 1 · 2CH2Cl2, two Ir atoms are η6-coordinated to both sides of terminal benzene rings from the upper and lower sides in the p-tp ligand, while one Ir atom is η6-coordinated to one side of the terminal benzene ring in the m-tp ligand in complex 2. Each crystal structure describes the first coordination mode found in metal complexes with the m- and p-tp ligands.  相似文献   

12.
A new singly bridging complex [Cu(dach)(μ-NCS)(NCS)]n (dach=1,4-diazacycloheptane) has been synthesised and its crystal structure determined. There are many examples of double NCS bridged polymeric chains, but fewer singly bridged ones. IR, ESR and temperature variable magnetic studies are described but no magnetic interaction was found between the copper centres. [Cu(dach)2(N3)]ClO4 has also been characterised by IR, ESR spectra and magnetic studies. The crystal structure determination shows that it is a penta-coordinated monomeric species with an axially coordinated azide linked to the perchlorate counterion by hydrogen bonding.  相似文献   

13.
Mononuclear [2.2]paracyclophane complexes of Rh and Ir, [M(η6-pcp)(η5-C5Me5)](BF4)2 (M=Rh (1) and Ir (2); pcp=[2.2]paracyclophane) were crystallized and their structures were first characterized crystallographically. On both pcp complexes the metal atom is bonded to the benzene ring on one side of the pcp ligand in the η6-coordination mode. The metal atom is also supported by the η5-C5Me5 ligand to afford a triple-decker sandwich structure. In Rh pcp complex 1 the average RhC(pcp) and RhC(C5Me5) distances are 2.284(2) and 2.161(2) Å, respectively. The average C(pcp)C(pcp) distance of 1.407(4) Å with the Rh atom is longer than that (1.388(4) Å) without a Rh atom. Similarly, the average IrC(pcp) and IrC(C5Me5) distances in Ir pcp complex 2 are 2.275(3) and 2.174(3) Å, respectively. The average C(pcp)C(pcp) distance of 1.410(4) Å with the Ir atom is longer than that (1.388(4) Å) without an Ir atom. It is interesting that the average interannular distances of 2.97 Å for 1 and 2 between two decks of the pcp ligand are shorter than that (3.09 Å) of the metal-free pcp ligand, indicative of the decrease of the repulsive π-interaction between benzene rings. The Rh pcp complex gave the well-resolved 1H NMR signals of [Rh(η6-pcp)(η5-C5Me5)]2+, whereas the Ir pcp complex exhibited two kinds of 1H NMR signals which were assigned as [Ir(η6-pcp)(η5-C5Me5)]2+ and [Ir26-pcp)(η5-C5Me5)2]4+ in (CD3)2CO at 23 °C.  相似文献   

14.
The U4+ cyclooctatetraenyl complex, [(C5Me5)(C8H8)U]2(μ-C8H8), 1, reacts with two equiv of 4,4′-dimethyl-2,2′-bipyridine (Me2bipy) and 2 equiv of 2,2′-bipyridine (bipy) to form 2 equiv of (η5-C5Me5)(η8-C8H8)U(Me2bipy-κ2N,N′) and (η5-C5Me5)(η8-C8H8)U(bipy-κ2N,N′), respectively. X-ray crystallography, infrared spectroscopy, and density functional theory calculations indicate that the products are best described as U4+ complexes of bipyridyl radical anions. Hence, only one of the (C8H8)2− ligands in 1 acts as a reductant and delivers 2 electrons per equiv of 1. Since the reduction potentials of uncomplexed (C8H8)2−, Me2bipy, and bipy are −1.86, −2.15, and −2.10 V vs SCE, respectively, it is likely that prior coordination of the bipyridine reagents enhances the electron transfer.  相似文献   

15.
The reaction of the racemic chiral methyl complex (η5-C5H5)Re(NO)(PPh3)(CH3) (1) with CF3SO3H and then NH2CH2C6H5 gives [(η5-C5H5)Re(NO)(PPh3)(NH2CH2C6H5)]+ ([4a-H]+; 73%), and deprotonation with t-BuOK affords the amido complex (η5-C5H5)Re(NO)(PPh3)(NHCH2C6H5) (76%). Reactions of 1 with Ph3C+ X and then primary or secondary amines give [(η5-C5H5)Re(NO)(PPh3)(CH2NHRR′)]+ X ([6-H]+ X; R/R′/X = a, H/NH2CH2C6H5/BF4; a′, H/NH2CH2C6H5/PF6; b, H/NH2CH2(CH2)2CH3/PF6; c, H/(S)-NH2CH(CH3)C6H5/BF4); d, CH2CH3/CH2CH3/PF6; e, CH2(CH2)2CH3/CH2(CH2)2CH3/PF6; f, CH2C6H5/CH2C6H5/PF6; g, -CH2(CH2)2CH2-/PF6; h, -CH2(CH2)3CH2-/PF6; i, CH3/CH2CH2OH/PF6 (62-99%). Deprotonations with t-BuOK afford the amines (η5-C5H5)Re(NO)(PPh3)(CH2NRR′) (6a-i; 99-40%), which are more stable and isolated in analytically pure form when R ≠ H. Enantiopure 1 is used to prepare (RReSC)-[6c-H]+, (RReSC)-6c, (S)-[6g-H]+, and (S)-6g. The crystal structures of [4a-H]+, a previously prepared NH2CH2Si(CH3)3 analog, [6a′,d,f,h-H]+, (RReSC)-6c, and 6f are determined and analyzed in detail, particularly with respect to cation/anion hydrogen bonding and conformation. In contrast to analogous rhenium containing phosphines, 6a-i show poor activities in reactions that are catalyzed by organic amines.  相似文献   

16.
A method for the synthesis of titanocene (IV) aryl carboxylate complexes is presented in this paper. It is based on the fact that alcohol can catalyze the reaction between Cp2TiCl2 and aryl carboxylate ligands in the presence of sodium hydroxide (NaOH). The effects of the catalyst on the reaction system were studied and the possible reaction mechanism was proposed. This method was used to prepare a series of titanocene (IV) aryl carboxylate complexes and a macrocyclic titanocene (5,5′-dithiodisalicylato titanocene), whose structure was determined by X-ray diffraction analysis.  相似文献   

17.
The reduction of ethanolic solutions of niobium pentachloride with zinc, followed by treatment with aqueous acids serves as a versatile entry into the aqueous solution chemistry of niobium. From the zinc-reduced solution, the major intermediate, Nb42-O)22-OC2H5)4Cl4(OC2H5)4(HOC2H5)4, was isolated and the crystal structure determined by X-ray crystallography. The complex crystallizes in the orthorhombic space group Pccn, with Z=4, a=21.0105(9), b=11.0387(5), c=19.1389(8), V=4438.9(3) Å3, Mr=1090.19,R1=0.0327 and wR2=0.0876. The structure revealed a centrosymmetric tetrameric Nb(IV) complex, consisting of a pair of edge-sharing bi-octahedral Nb22-OC2H5)4Cl2(OC2H5)2(HOC2H5)2 units that are joined by two axial oxo ligands. The Nb-Nb distance of 2.7458(3) Å is consistent with a single metal-metal bond.  相似文献   

18.
The reactions of [Pt2(μ-S)2(PPh3)4] towards a range of palladium(II) complexes containing organometallic ligands (cyclopalladated N-donor ligands, η3-allyl, phenyl) have been explored, leading to the formation of a series of cationic, trinuclear sulfido-bridged aggregates containing {Pt2PdS2} cores. [Pt2(μ-S)2(PPh3)4] also reacts with the platinum(II) hydride complex trans-[PtHCl(PPh3)2] giving the adduct [Pt2(μ-S)2(PPh3)4PtH(PPh3)]+. X-ray crystal structure determinations on the complexes [Pt2(μ-S)2(PPh3)4PdPh(PPh3)]PF6 and [Pt2(μ-S)2(PPh3)4PtH(PPh3)]PF6 are reported, and show the expected bis μ3-sulfido aggregates with three square-planar metal centres.  相似文献   

19.
Treatment of the six-coordinate trimethylstannyl complex, Os(SnMe3)(κ2-S2CNMe2)(CO)(PPh3)2 (1) with SnMe2Cl2 produces Os(SnMe2Cl)(κ2-S2CNMe2)(CO)(PPh3)2 (2), which in turn reacts readily with hydroxide ion to give, Os(SnMe2OH)(κ2-S2CNMe2)(CO)(PPh3)2 (3). The osmastannol complex 3 undergoes a reaction with 2 equivalents of tBuLi, in which one of the phenyl rings of a triphenylphosphine ligand is “ortho-stannylated”, without cleavage of the Os-Sn bond, to give the cyclic complex, Os(κ2(Sn,P)-SnMe2C6H4PPh2)(κ2-S2CNMe2)(CO)(PPh3) (4). This novel cyclic complex is selectively functionalised at the tin atom by reaction with SnMe2Cl2 which exchanges one methyl group for chloride giving the diastereomeric mixture, Os(κ2(Sn,P)-SnMeClC6H4PPh2)(κ2-S2CNMe2)(CO)(PPh3) (5a/5b). Crystal structure determination reveals that both diastereomers occur in the unit cell. The mixture, 5a/5b, undergoes reaction with hydroxide ion to give the diastereomeric osmastannol complexes, Os(κ2(Sn,P)-SnMeOHC6H4PPh2)(κ2-S2CNMe2)(CO)(PPh3) (6a/6b) and with sodium borohydride to give the corresponding tin-hydride mixture, Os(κ2(Sn,P)-SnMeHC6H4PPh2)(κ2-S2CNMe2)(CO)(PPh3) (7a/7b). Crystal structure determinations for 2, 4, and 5a/5b have been obtained.  相似文献   

20.
The Pt2 (II) isomeric terminal hydrides [(CO)(H)Pt(μ-PBu2)2Pt(PBu2H)]CF3SO3 (1a), and [(CO)Pt(μ-PBu2)2Pt(PBu2H)(H)]CF3SO3 (1b), react rapidly with 1 atm of carbon monoxide to give the same mixture of two isomers of the Pt2 (I) dicarbonyl [Pt2(μ-PBu2)(CO)2(PBu2H)2]CF3SO3 (3-Pt); the solid state structure of the isomer bearing the carbonyl ligands pseudo-trans to the bridging phosphide was solved by X-ray diffraction. A remarkable difference was instead found between the reactivity of 1a and 1b towards carbon disulfide or isoprene. In both cases 1b reacts slowly to afford [Pt2(μ-PBu2)(μ,η22-CS2)(PBu2H)2]CF3SO3 (4-Pt), and [Pt2(μ-PBu2)(μ,η22-isoprene) (PBu2H)2]CF3SO3 (6-Pt), respectively. In the same experimental conditions, 1a is totally inert. A common mechanism, proceeding through the preassociation of the incoming ligand followed by the PH bond formation between one of the bridging P atoms and the hydride ligand, has been suggested for these reactions.  相似文献   

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