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1.
Reactions of 1-{[2-(arylazo)phenyl]iminomethyl}-2-phenol, HLsal, 1, [where H represents the dissociable protons upon complexation and aryl groups of HLsal are phenyl for HL1sal, p-methylphenyl for HL2sal, and p-chlorophenyl for HL3sal], ligands with Ru(H)(CO)(Cl)(PPh3)3 afforded complexes of composition [(Lsal)Ru(CO)(Cl)(PPh3)] and (Lsal)2Ru where the N,N,O donor tridentate (Lsal) ligands coordinated the metal centre facially and meridionally, respectively. Stepwise formation of [(Lsal)2Ru] has been ascertained. Reaction of 1-{[2-(arylazo)phenyl]iminomethyl}-2-napthol, HLnap, 2, [where H represents the dissociable protons upon complexation and aryl groups of HLnap are phenyl for HL1nap, p-methylphenyl for HL2nap, and p-chlorophenyl for HL3nap], ligands with Ru(H)(CO)(Cl)(PPh3)3 afforded exclusively the complexes of composition [(Lnap)Ru(CO)(Cl)(PPh3)], where N,N,O donor tridentate (Lnap) was facially coordinated. The ligand 1-{[2-(phenylazo)phenyl]aminomethyl}-2-phenol, HL, 3, was prepared by reducing the aldimine function of HL1sal. Reaction of HL with Ru(PPh3)3Cl2 afforded new azosalen complex of Ru(III) in concert with regiospecific oxygenation of phenyl ring of HL. All the new ligands were characterized by analytical and spectroscopic techniques. The complexes were characterized by analytical and spectroscopic techniques and subsequently confirmed by the determination of X-ray structures of selected complexes.  相似文献   

2.
The Schiff base, 2-chlorophenylsalicylaldimine (HL1), is formed readily from salicylaldehyde and 2-chloroaniline. After deprotonation, this ligand is found to react as a bidentate mixed-donor chelate with the complexes [RuRCl(CO)(BTD)(PPh3)2] (R = H, CHCHC6H5, CHCHC6H4Me-4, CHCHtBu, CCCPhCHPh; BTD = 2,1,3-benzothiadiazole) to form the compounds [RuR(L1)(CO)(PPh3)2] through displacement of the chloride and BTD ligands. An analogous reaction occurs with the osmium complex [OsHCl(CO)(BTD)(PPh3)2] to provide [OsH(L1)(CO)(PPh3)2]. The compound [Ru(CHCHC6H4Me-4)(L2)(CO)(PPh3)2] is formed through reaction of salicylaldehyde (HL2) with [Ru(CHCHC6H4Me-4)Cl(CO)(BTD)(PPh3)2] in the presence of base. Two further ligands were investigated to extend the study to encompass 5- and 4-membered chelates; 8-hydroxyquinoline (HL3) and 2-hydroxy-4-methylquinoline (HL4) react with [Ru(CHCHPh)Cl(CO)(BTD)(PPh3)2] and [Ru(CHCHC6H4Me-4)Cl(CO)(BTD)(PPh3)2] in the presence of base to yield the complexes [Ru(CHCHPh)(L3)(CO)(PPh3)2] and [Ru(CHCHC6H4Me-4)(L4)(CO)(PPh3)2], respectively. The crystal structure of [Ru(CHCHC6H4Me-4)(L1)(CO)(PPh3)2] is reported.  相似文献   

3.
[Ru(H)(CO)(PPh3)2(α/β-NaiR)](ClO4) (3, 4) are synthesized by the reaction of [Ru(H)(Cl)(CO)(PPh3)3] with 1-alkyl-2-(naphthyl-α/β-azo)imidazole (α-NaiR (3); β-NaiR (4)). One of the complexes [Ru(H)(CO)(PPh3)2(α-NaiMe)](ClO4) (3a) has been structurally established by X-ray diffraction study. Upon addition of Cl2 saturated in MeCN to 3 or 4 gives [Ru(Cl)(CO)(α/β-NaiR)(PPh3)2](ClO4) (for α-NaiR (5); β-NaiR (6)), without affecting metal oxidation state, which were characterized by spectroscopic measurements. The redox property of the complexes is examined by cyclic voltammetry.  相似文献   

4.
The reduction of Cl(NH3)5Ru(III) and subsequent binding of heterocyclic ligands by the resultant (H2O)(NH3)5Ru(II) ion is shown to be catalyzed by components of rat-liver cells. The presence of air significantly decreases the rate of heterocyclic ligand binding. In the case of microsome and soluble component catalysis, this is probably due to oxidation of the Ru(II) ion prior to complexation. Various inhibitors of electron-transfer proteins were employed in an effort to determine the preferred reducing species. These results lend support to the hypothesis that the antitumor activity of acido ruthenium(III) ammine complexes involves activation by reduction in vivo prior to metal coordination to nucleic acids. Anticancer drugs functioning by this mechanism may be preferentially toxic to or may localize in hypoxic areas of tumors.  相似文献   

5.
The reactions of the Fe(II) and Ru(II) halogenide complexes [Fe(PPh3)2Br2], [Fe(NCCH3)2Br2], [Ru(PPh3)3Cl2], and [Ru(dmso)4Cl2] with GaCp and AlCp, respectively, are investigated. The reactions of [FeBr2L2] with ECp exclusively proceed via Cp transfer, leading to [FeCp(GaCp)(GaBr2)(PPh3)] (1) (L = PPh3, E = Ga), [FeCp(GaCp)2 (GaBr2)] (2) (L = NCCH3, E = Ga) and [FeCp(μ3-H)(κ2-(C6H4)PPh2)(AlCp)(AlBr2)] (3) (L = PPh3, E = Al), the latter of which is formed via orthometallation of one PPh3 ligand. The reaction of [Ru(dmso)4Cl2] leads to the homoleptic complex [Ru(GaCp)6Cl2] (4) in high yields, while [Ru(PPh3)3Cl2] gives 4 in rather low yields. The reason for this difference in reactivity is investigated and it is shown that Cp transfer and orthometallation are the limiting side reactions of the reaction of [Ru(PPh3)3Cl2] with GaCp. All compounds were characterized by NMR spectroscopy, and single crystal X-ray diffraction studies were performed for 1, 3, and 4.  相似文献   

6.
An unusual coordination mode of salicylaldehyde-N-phenylthiosemicarbazone (H2-Sal-Ptsc) ligand was observed in unusual ruthenium(III) carbonyl complex for the first time when it was reacted with [RuHCl(CO)(PPh3)3]. The EPR and electrochemical analysis conformed the formation of Ru(III) species.  相似文献   

7.
The reactions of [Ru(PPh3)3Cl2], N-(benzoyl)-N′-(5-R-salicylidene)hydrazines (H2bhsR, R = H, OCH3, Cl, Br and NO2) and triethylamine (1:1:2 mole ratio) in methanol afford mononuclear ruthenium(III) complexes having the general formula trans-[Ru(bhsR)(PPh3)2Cl]. In the case of R = H, a dinuclear ruthenium(III) complex of formula [Ru2(μ-OCH3)2(bhsH)2(PPh3)2] has been isolated as a minor product. The complexes are characterized by elemental analysis, magnetic, spectroscopic and electrochemical measurements. The crystal structures of the dinuclear complex and two mononuclear complexes have been determined. In the dinuclear complex, each metal centre is in distorted octahedral NO4P coordination sphere constituted by the two bridging methoxide groups, one PPh3 molecule and the meridionally spanning phenolate-O, imine-N and amide-O donor bhsH2−. The terminal PPh3 ligands are trans to each other. In the mononuclear complexes, bhsR2− and the chlorine atom form an NO2Cl square-plane around the metal centre and the P-atoms of the two PPh3 molecules occupy the remaining two axial sites to complete a distorted octahedral NO2ClP2 coordination sphere. All the complexes display ligand-to-metal charge transfer bands in the visible region of the electronic spectra. The cryomagnetic measurements reveal the antiferromagnetic character of the diruthenium(III) complex. The low-spin mononuclear ruthenium(III) complexes as well as the diruthenium(III) complex display rhombic EPR spectra in frozen solutions. All the complexes are redox active in CH2Cl2 solutions. Two successive metal centred oxidations at 0.69 and 1.20 V (versus Ag/AgCl) are observed for the dinuclear complex. The mononuclear complexes display a metal centred reduction in the potential range −0.53 to −0.27 V. The trend in these potential values reflects the polar effect of the substituents on the salicylidene moiety of the tridentate ligand.  相似文献   

8.
The template alkylation of Li2[Ru(CO)2(S2C6H4)2] (S2C6H42− = 1,2-benzenedithiolate(−2)) by S(C2H4Br)2 yields [Ru(CO)2(dpttd)] (dpttd2− = 3,11,12-dibenzo-1,4,7,10,13-pentathiatridecane(−2)) which is thermally converted into the monocarbonyl complex [Ru(CO)(dpttd)]. The reactions of dpttd-H2 or dpttd2− with [RuCl2(PPh3)3], [RuCl2(DMSO)4], [RuCl3(PhSCH3)3] and RuCl3(NO)·xH2O lead to [Ru(L)(dpttd)] and [Ru(L)(dpttd)]Cl (L = PPh3, DMSO, PhSCH3, NO), respectively, which are practically insoluble in all common solvents. Better soluble complexes are obtained with the new sterically demanding ligand tbu4-dpttd2− = 14,16,18,20-tetra(t-butyl)-2,3,11,12-dibenzo-1,4,7, 10,13-pentathiatridecane(−2); it is obtained in isomerically pure form by the reaction of tetrabuthylammonium-3,5-di (t-butyl)-1,2-benzenethiolthiolate, NBu4[tbu2-C6H2S(SH), with S(C2H4Br)2 and yields on reaction with [RuCl2(PPh3)3] the very soluble [Ru(PPh3)2(tbu4-dpttd)] as well as [Ru(PPh3(tbu4-dpttd)]. The 1H NMR and 31P NMR spectra indicate that in solution [Ru(PPh3)2(tbu4-dpttd)] exists as a mixture of diastereomers, whereas [Ru(PPh3)(tbu4-dpttd)] forms one pair of enantiomers only. This was confirmed by an X-ray structure determination of a single crystal. [Ru(PPh3)(tbu4-dpttd)] crystallizes in space group P21/n with a = 10.496(4), b = 14.888(6), c = 32.382(12) Å, β = 98.04(3)°, Z = 4 and Dcalc. = 1.27 g/cm3, R = 4.84; RW = 5.06%; the ruthenium center is coordinated pseudooctahedrally by one phosphorus, two thiolate and three thiother S atoms.  相似文献   

9.
Complexes of Ru(II) and Ru(III) with the bidentate ligand diphenylphosphinoacetic acid (POH) are reported. The ligand POH reacts with RuCl2(PPh3)3 in a 1:3 ratio to give a five-coordinate complex of composition Ru(PO)2(POH) with complete displacement of PPh3. In a 1:2 ratio however the complex Ru(PO)2(PPh3) is formed. The reaction of POH with RuCl2(DMSO)4 in a 2:1 ratio afforded a yellow complex of composition HRu(PO)2Cl(DMSO). In a 3:1 ratio of POH to RuCl2(DMSO)4 however, the complex HRu(PO)3 was obtained. Neutral complexes of the composition Ru(PO)2Cl(AsPh3) and Ru(PO)3 were obtained by the reaction of RuCl3(AsPh3)2·MeOH with POH in 1:2 and 1:3 mole ratios in acetone solution, respectively. A dimeric chloro bridged complex of composition [Ru(PO)2Cl]2 was obtained on reaction of RuCl33H2O with POH in methanol. The complexes have been characterized on the basis of elemental analysis 1H, 13C{1H} and 31P{1H} NMR, EPR and electrochemical studies.The square pyramidal complexes 1 and 2 undergo facile addition reactions with CO, H2, PPh3 and DMSO to form octahedral species. The redox potentials RuIII/RuII of the complexes become more positive with an increase in the π-acidity of the ligand coordinated to the metal ion.  相似文献   

10.
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   

11.
The reaction of [Ru(salen)(PPh3)Cl] and the 5-imidazol-substituted nitronyl nitroxide radical (NIT-(5)ImH) yields the [Ru(salen)(PPh3)(NIT-(5)ImH)](ClO4) (1) complex which has been characterized by single crystal X-ray diffraction. This analysis reveals that the Ru(III) ion is coordinated to a tetradentate salen2? ligand in equatorial positions while one PPh3 ligand and one NIT-(5)ImH radical are coordinated in axial positions. This led to RuIII ions in tetragonally elongated octahedral geometry. From the magnetic point of view ferromagnetic intramolecular interaction (J1 = +2.47 cm?1) have been found between the Ru(III) ion and the coordinated NIT-(5)ImH while no significant intermolecular antiferromagnetic interactions are observed at low temperature leading to a ground spin state S = 1. The absence of intermolecular magnetic interaction is explained by considering the crystal packing of (1) where the [Ru(salen)(PPh3)(NIT-(5)ImH)]+ moieties are relatively well isolated. This has to be compared with the situation observed in the previously reported [Ru(salen)(PPh3)-(NIT)]+ compound (2) where ferromagnetic RuIII–NIT interaction were identified and the crystal packing generate intermolecular antiferromagnetic interactions that complicated the study. The analysis of this compound confirms the rather isotropic g values that were found of (2) and of [Ru(salen)(PPh3)(N3)], (3) a radical-free analogue. Moreover it is also a step towards extended structures based on RuIII–NIT moieties since this compound possesses a free bischelating site likely to coordinate additional metallic ions.  相似文献   

12.
The heterobimetallic Ru/Pt and Ru/Pd complexes [η5-C5H4CH2CH2N(CH3)2 · HI]Ru(PPh3)(μ-I)(μ-dppm)PtCl2 (7), [η5-C5H4CH2CH2N(CH3)2 · HI]Ru(PPh3)(μ-I)(μ-dppm)PtI2 (8), [η5-C5H4CH2CH2N(CH3)2 · HI]Ru(PPh3)(μ-I)(μ-dppm)PdCl2 (9), and [η5-C5H4CH2CH2N(CH3)2 · HI]Ru(PPh3)(μ-I)(μ-dppm)PdI2 (10) were prepared by the reaction of [η5-C5H4CH2CH2N(CH3)2 · HI]Ru(PPh3)I(κ1-dppm) (6) with Pt(COD)Cl2, Pt(COD)I2, and Pd(COD)Cl2, respectively. Electronic interaction between the two metals is significant for the iodide-bridged compounds 7-10, as evidenced by the shifts of their redox potentials in comparison to the mononuclear complexes. The electrochemical oxidation of methanol was carried out with heterobimetallic complexes 7-10 and leads to the formation of dimethoxymethane (DMM) and methyl formate (MF) as the major oxidation products. The chloride complexes 7 and 9 are the most active catalysts, as evidenced by their TON and current efficiencies. Addition of water at the beginning of the electrolysis results in increased formation of the more oxidized product MF along with higher current efficiencies and TON.  相似文献   

13.
Deprotonation of 4-mercapto-1,2-dithiole-3-thiones with NEt3 followed by reaction with [Ru(H)(Cl)(CO)(PPh3)3] affords virtually quantitative yields of turquoise [Ru(H)(RC3S4)(CO)(PPh3)2] (R = Ph, Mes) in which the heterocycle is bound as a bidentate uninegative ligand through the two exocyclic sulfur atoms. The presence of both possible isomers in each case is indicated by NMR spectroscopy. Reaction of the 4-mercapto-1,2-dithiole-3-thiones with [MoO2(acac)2] results in displacement of the acac ligands and formation of [MoO2(RC3S4)2]. The crystal structures of [Ru(H)(MesC3S4)(CO)(PPh3)2] and [MoO2(MesC3S4)2] have been determined.  相似文献   

14.
The reaction of Ru(CO)3(PPh3)2 with (NS2)(SbCl6) in acetonitrile results in the formation of [Ru(CO)2(NS2)(PPh3)2](SbCl6) which reacts with PPh3 to give the thionitrosyl complex [Ru(CO)2(NS)(PPh3)2](SbCl6). The NS2-complex in CH2Cl2 gives Ru(CO)2Cl2(PPh3)2.  相似文献   

15.
The oxidation of Ni(PPh3)4 with BF3 · OEt2, H3CCOOH, and F3CCOOH, and that of (PPh3)2Ni(C2H4) with BF3 · OEt2 is studied by EPR spectroscopy. The reaction of the Ni(0) complexes with BF3 · OEt2 gives Ni(II) complexes with which they react to form Ni(I) compounds with covalent Ni-F and Ni-B bonds that transform with excess BF3 · OEt2 into cationic paramagnetic Ni(I) complexes. Acetic acid also adds oxidatively to Ni(PPh3)4 to form a Ni(II) complex that reacts further to give Ni(I) hydride and carboxylate complexes. The Ni(I) hydride is transformed by the acid into the Ni(I) carboxylate with release of hydrogen, the amount of which depends on the rate of acid addition. The following Ni(I) complexes are identified in the reaction medium: [Ni(PPh3)3]BF4, [(PPh3)2Ni(OEt2)]BF4, [(PPh3)Ni(OEt2)n]BF4, (PPh3)2NiBF2, (PPh3)3NiOOCCH3, and [(PPh3)2Ni(OEt2)P(OEt)3]BF4. Oxidation schemes of Ni(0) complexes by Lewis and Brønsted acids are given.  相似文献   

16.
The reaction of the S-nitrosothiol compound N-acetyl-1-amino-2-methylpropyl-2-thionitrite (RSNO) with the model metalloporphyrin complex Ru(II)(OEP)(CO) (OEP = octaethylporphyrinato dianion) gives the addition product trans-Ru(II)(OEP)(NO)(SR). Here we report the details of a stopped flow kinetics investigation which demonstrates the rapid equilibrium formation of an intermediate concluded to be S-bound RSNO complex Ru(II)(OEP)(RSNO)(CO), which undergoes a rate-limiting step, presumably S-NO bond cleavage to give a second intermediate Ru(III)(OEP)(SR)(CO) too short lived for direct observation. Notably, this is different from the nitrogen coordination pathway often proposed and represents an alternative mechanism by which S-nitrosothiols may be formed or decomposed in the presence of redox active metal centers. Also reported is a brief study of the quantitative photochemistry of RSNO, the photodecomposition of which complicates the kinetics studies by spectroscopic techniques.  相似文献   

17.
The alkylation of the thiolato-S atoms of the dttd- ligand in [RuL1L2dttd] complexes was investigated (L1L2PPh3; L1L2PMe3; L1PPh3, L2PMe3; dttd2−=2,3:8,9-dibenzo-1,4,7,10-tetrathiadecane(−2)). The substitution lability of the phosphine ligands L1 and L2 determines whether one or both of the thiolato-S atoms are alkylated when [RuL1L2dttd] is reacted with alkylhalides. [Ru(PPh3)2dttd], in which one PPh3 is substitution labile, is doubly alkylated on reaction with CH3I yielding [Ru(PPh3)I(Me2-dttd)]I (Me2-dttd=1,10-dimethyl-2,3:8,9-dibenzo-1,4,7,10-tetrathiadecane). Reaction of the substitution inert phosphine complexes [Ru(PMe3)2dttd] and [Ru(PPh3)(PMe3)dttd] with CH3I yields the monoalkylated derivatives [Ru(PMe3)2(Me-dttd)]I and [Ru(PPh3)(PMe3)(Me- dttd)]I, respectively. Analogously, ethyl as well as bromine derivatives can be obtained. The cation in [Ru(PPh3)X(Me2-dttd)]X (XI, Br) proves to be substitution inert under ordinary conditions; the anion X can be exchanged for other singly charged anions via [Ru(PPh3)X(Me2dttd)]2SO4. In concentrated H2SO4, [Ru(PPh3)Br(Me2-dttd)]Br could be reacted to give [Ru(Br2)(Me2dttd)]. All compounds were characterized spectroscopically as well as by elemental analyses. The structure of [Ru(PPh3)I(Me2- dttd)]I was determined by X-ray structure analysis.[Ru(PPh3)I(Me2-dttd)]I (1) crystallizes from CH2Cl2 as 1·3CH2Cl2 in the monoclinic space group P21/c with the following unit cell dimensions: a= 20.103(0.03), b=11.148(0.009), c=26.985(0.03) Å; β=130.71(0.07)°, V=4584(3) Å3 and Z=4. The structure refinement stopped at R1=8.86 and R2= 10.44% because of disorder of the CH2Cl2 solvate molecules. In the cation of 1 Ru is coordinated pseudo-octahedrally by I-, P- and four thioether-S atoms.  相似文献   

18.
A series of ruthenium (II) complexes of formulae trans-[Ru(PPh3)2(L′H)2](ClO4)2 (1), [Ru(bpy)(L′H)2](ClO4)2 (2), [Ru(bpy)2(L′H)](ClO4)2 (3), cis-[Ru(DMSO)2(L′H)2]Cl2 (4), and [Ru(L′H)3](PF6)2 (5) (where L′H = 2-(2′-benzimidazolyl)pyridine) have been synthesized by reaction of the appropriate ruthenium precursor with 1,2-bis(2′-pyridylmethyleneimino)benzene (L). The complexes were characterized by elemental analyses, spectroscopic and electrochemical data. All the complexes were found to be diamagnetic and hence metal is in +2 oxidation state. The molecular structure of trans-[Ru(PPh3)2(L′H)2](ClO4)2 has been determined by the single crystal X-ray diffraction studies. The molecular structure shows that Ru(II) is at the center of inversion of an octahedron with N4P2 coordination sphere. The ligand acts as a bidentate N,N′donor. The electronic spectra of the complexes display intense MLCT bands in the visible region.Cyclic voltammetric studies show quasi-reversible oxidative response at 0.99-1.32 V (vs Ag/AgCl reference electrode) due to Ru(III)/Ru(II) couple.  相似文献   

19.
The new complex, [RuII(bpy)2(4-HCOO-4′-pyCH2 NHCO-bpy)](PF6)2 · 3H2O (1), where 4-HCOO-4′-pyCH2NHCO-bpy is 4-(carboxylic acid)-4′-pyrid-2-ylmethylamido-2,2′-bipyridine, has been synthesised from [Ru(bpy)2(H2dcbpy)](PF6)2 (H2dcbpy is 4,4′-(dicarboxylic acid)-2,2′-bipyridine) and characterised by elemental analysis and spectroscopic methods. An X-ray crystal structure determination of the trihydrate of the [Ru(bpy)2(H2dcbpy)](PF6)2 precursor is reported, since it represented a different solvate to an existing structure. The structure shows a distorted octahedral arrangement of the ligands around the ruthenium(II) centre and is consistent with the carboxyl groups being protonated. A comparative study of the electrochemical and photophysical properties of [RuII(bpy)2(4-HCOO-4′-pyCH2NHCO-bpy)]2+ (1), [Ru(bpy)2(H2dcbpy)]2+ (2), [Ru(bpy)3]2+ (3), [Ru(bpy)2Cl2] (4) and [Ru(bpy)2Cl2]+ (5) was then undertaken to determine their variation upon changing the ligands occupying two of the six ruthenium(II) coordination sites. The ruthenium(II) complexes exhibit intense ligand centred (LC) transition bands in the UV region, and broad MLCT bands in the visible region. The ruthenium(III) complex, 5, displayed overlapping LC bands in the UV region and a LMCT band in the visible. 1, 2 and 3 were found, via cyclic voltammetry at a glassy carbon electrode, to exhibit very positive reversible formal potentials of 996, 992 and 893 mV (versus Fc/Fc+) respectively for the Ru(III)/Ru(II) half-cell reaction. As expected the reversible potential derived from oxidation of 4 (−77 mV (versus Fc/Fc+)) was in excellent agreement with that found via reduction of 5 (−84 mV (versus Fc/Fc+)). Spectroelectrochemical experiments in an optically transparent thin-layer electrochemical cell configuration allowed UV-Vis spectra of the Ru(III) redox state to be obtained for 1, 2, 3 and 4 and also confirmed that 5 was the product of oxidative bulk electrolysis of 4. These spectrochemical measurements also confirmed that the oxidation of all Ru(II) complexes and reduction of the corresponding Ru(III) complex are fully reversible in both the chemical and electrochemical senses.  相似文献   

20.
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   

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