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1.
Reaction of 1,3-bis(2′-Ar-imino)isoindolines (HLn, n = 1-7, Ar = benzimidazolyl, N-methylbenzimidazolyl, thiazolyl, pyridyl, 3-methylpyridyl, 4-methylpyridyl, and benzthiazolyl, respectively) with Cu(OCH3)2 yields mononuclear hexacoordinate complexes with Cu(Ln)2 composition. With cupric perchlorate square-pyramidal [CuII(HLn)(NCCH3)(OClO3)]ClO4 complexes (n = 1, 3, 4) were isolated as perchlorate salts, whereas with chloride CuII(HLn)Cl2 (n = 1, 4), or square-planar CuIICl2(HLn) (n = 2, 3, 7) complexes are formed. The X-ray crystal structures of Cu(L3)2, Cu(L5)2, [CuII(HL4)(NCCH3)(OClO3)]ClO4, CuIICl(L2) and CuIICl(L7) are presented along with electrochemical and spectral (UV-Vis, FT-IR and X-band EPR) characterization for each compound. When combined with base, the isoindoline ligands in the [CuII(HLn)(NCCH3)(OClO3)]ClO4 complexes undergo deprotonation in solution that is reversible and induces UV-Vis spectral changes. Equilibrium constants for the dissociation are calculated. X-band EPR measurements in frozen solution show that the geometry of the complexes is similar to the corresponding X-ray crystallographic structures. The superoxide scavenging activity of the compounds determined from the McCord-Fridovich experiment show dependence on structural features and reduction potentials.  相似文献   

2.
The metal complexation properties of a functionalized N3O2 donor ligand H2L2, where H2L2 stands for 2,6-diacetyl-4-carboxymethyl-pyridine bis(benzoylhydrazone), are investigated by structural and spectroscopic (IR, ESI-MS and EPR) characterization of its Mn(II) and Co(II) complexes. The ligand H2L2 is observed to react essentially in the same fashion as its unmodified parent H2L1 producing mixed-ligand [M(H2L2)(Cl2)] complexes (M = MnII (1), CoII (3)) upon treatment with MCl2. Complexes [M(HL2)(H2O)(EtOH)]BPh4 (M = Mn 2, M = Co 4), incorporating the supporting ligand in the partially deprotonated form (HL2), are formed by salt elimination of the [M(H2L2)(Cl2)] compounds with NaBPh4. Compounds 2 and 4 are isostructural featuring distorted pentagonal-bipyramidal coordinated MnII and CoII ions, with the H2O and EtOH ligands bound in axial positions. Intermolecular hydrogen bonding interactions of the type M-OH2?O-M involving the H2O ligands and the carbonyl functions of the supporting ligand assembles the complexes into dimers. Temperature-dependent magnetic susceptibility measurements (2-300 K) show a substantially paramagnetic Curie behavior for the Mn2+ compound (2) influenced by zero-field splitting and significant orbital angular momentum contribution for 4 (high-spin CoII). The exchange coupling across the MnII-OH2?O-MnII bridges in 2 was found to be less than 0.1 cm−1, suggesting that no significant intradimer exchange coupling occurs via this path.  相似文献   

3.
Four new mononuclear iron(III) complexes with the substituted-salicylaldimine ligands, [Fe(L1)(TCC)] (1), [Fe(L2)(TBC)] (2), [Fe(L3)(TBC)] (3) and [Fe(L4)(TCC)](CH3CN) (4) (HL1 = N′-(5-OH-salicylaldimine)-diethylenetriamine, HL2 = (N′-(5-Cl-salicylaldimine)-diethylenetriamine, HL3 N′-(5-Br-salicyl-aldimine)-dipropylenetriamine, HL4 = (N′-3,5-Br-salicylaldimine)-dipropylenetriamine, H2TCC = tetrachlorocatechol, and H2TBC = tetrabromocatechol), were prepared and characterized by XRD, EPR, and Mössbauer spectroscopy. The coordination sphere of the Fe(III) in complexes 1-4 is a distorted octahedral with N3O3 donors set which constructed by the Schiff-base ligands and the catecholate substrates of TBC or TCC. The in situ prepared Fe(III) complexes [Fe(L1)Cl2], [Fe(L2)Cl2], [Fe(L3)(Cl2)], and [Fe(L4)Cl2] in absence of TBC or TCC show a high catecholase-like activity for the oxidation of 3,5-DTBC to the corresponding quinone 3,5-DTBQ.  相似文献   

4.
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   

5.
A series of mononuclear iron(III) complexes with containing phenolate donor of substituted-salicylaldimine based ligands [Fe(L1)(TCC)] · CH3OH (1), [Fe(L2)(TCC)] · CH3OH (2), [Fe(L3)(TCC)] (3), and [Fe(L4)(TCC)] (4) have been prepared and studied as functional models for catechol dioxygenases (H2TCC = tetrachlorocatechol, or HL1 = N′-(salicylaldimine)-N,N-diethyldiethylenetriamine, HL2 = N′-(5-Br-salicylaldimine)-N,N-diethyldiethylenetriamine, HL3 = N′-(4,6-dimethoxy-salycyl-aldimine)-N,N-diethyl-diethylenetriamine, HL4 = N′-(4-methoxy-salicylaldimine)-N,N-diethyl-diethylenetriamine). They are structural models for inhibitors of enzyme-substrate adducts from the reactions of catechol 1,2-dioxygenases. Complexes 1-4 were characterized by spectroscopic methods and X-ray crystal structural analysis. The coordination sphere of Fe(III) atom of 1-4 is distorted octahedral with N3O3 donor set from the ligand and the substrate TCC occupying cis position, and Fe(III) is in high-spin (S = 5/2) electronic ground state. The in situ prepared iron(III) complexes without TCC, [Fe(L1)Cl2], [Fe(L2)Cl2], [Fe(L3)Cl2], and [Fe(L4)Cl2] are reactive towards intradiol cleavage of the 3,5-di-tert-butylcatechol (H2DBC) in the presence of O2 or air. The reaction rate of catechol 1,2-dioxygenase depends on the redox potential and acidity of iron(III) ions in complexes as well as the substituent effect of the ligands. We have identified the reaction products and proposed the mechanism of the reactions of these iron(III) complexes with H2DBC with O2.  相似文献   

6.
The Pd(II) and Pt(II) complexes with triazolopyrimidine C-nucleosides L1 (5,7-dimethyl-3-(2′,3′,5′-tri-O-benzoyl-β-d-ribofuranosyl-s-triazolo)[4,3-a]pyrimidine), L2 (5,7-dimethyl-3-β-d-ribofuranosyl-s-triazolo[4,3-a]pyrimidine) and L3 (5,7-dimethyl[1,5-a]-s-triazolopyrimidine), [Pd(en)(L1)](NO3)2, [Pd(bpy)(L1)](NO3)2, cis-Pd(L3)2Cl2, [Pd2(L3)2Cl4] · H2O, cis-Pd(L2)2Cl2 and [Pt3(L1)2Cl6] were synthesized and characterized by elemental analysis and NMR spectroscopy. The structure of the [Pd2(L3)2Cl4] · H2O complex was established by X-ray crystallography. The two L3 ligands are found in a head to tail orientation, with a Pd?Pd distance of 3.1254(17) Å. L1 coordinates to Pd(II) through N8 and N1 forming polymeric structures. L2 coordinates to Pd(II) through N8 in acidic solutions (0.1 M HCl) forming complexes of cis-geometry. The Pd(II) coordination to L2 does not affect the sugar conformation probably due to the high stability of the C-C glycoside bond.  相似文献   

7.
A dinuclear ferric complex with the redox-active ligand (LCl2)2- (H2LCl2 = N,N′-dimethyl-bis(3,5-dichloro-2-hydroxybenzyl)-1,2-diaminoethane), was synthesized and characterized. The two iron(III) ions are six-coordinate in a distorted octahedral environment of the donor set of one (LCl2)2− and one amine and one phenolate donor of a second (LCl2)2−, which bridges the two complex halves. The relatively low-symmetric complex 1 crystallizes in the space group R. The crystal structure contains hexagonal, one-dimensional channels parallel to the c axis with diameters of ∼13 Å. The absorption spectrum of 1 exhibits strong characteristic features of pπ  dπ, pπ  dσ, phenolate-to-metal CTs, and π  π ligand transitions. Electrochemical studies on 1 reveal the redox-activity of the coordinated ligand (LCl2)2− by showing irreversible oxidative electron-transfer waves. The reductive electron transfers at negative potentials seem to originate from metal-centered processes. A detailed comparison to complexes with similar donor sets provides new insights into the electrochemical properties of these kinds of complexes.  相似文献   

8.
Three polymeric o-dioxolene chelated manganese(III) complexes, {[MnIII(H2L1)(Cl4Cat)2][MnIII(Cl4Cat)2(H2O)2]} (1) (L1 = N,N′-bis(2-pyridylmethyl)-1,4-butanediamine, Cl4Cat = tetrachlorocatecholate dianion], {[MnIII(H2L1)(Br4Cat)2][MnIII(Br4Cat)2(H2O)2]·4DMF}∞, (2) and {[MnIII(H2L2)(Br4Cat)2][MnIII(Br4Cat)2(DMF)2]} (3) (L2 = N,N′-bis(2-pyridylmethyl)-1,6-hexanediamine, Br4Cat = tetrabromocatecholate dianion) have been synthesized and structures were determined by X-ray crystallography. All the complexes were fully characterized by various spectroscopic techniques and their electronic properties are described. It was found that the simple protonation or deprotonation of the bridging ligand (L1 or L2) coordinated to metal-dioxolene chromophore induce a change in the oxidation state of the coordinated dioxolene ligand without affecting the metal oxidation state. As a result, drastic change in the optical absorption properties of the complexes is observed in the visible and near-IR region as the transformation involves semiquinone-catecholate ligands. Moreover, all three complexes undergo thermally induced valence tautomerism in solution. For all the complexes, on increasing the temperature, the intensity of the lower energy Inter Valence Charge Transfer (IVCT) band at about 1930 nm increases with corresponding decrease of 600 nm band with an isosbestic point at 1820 nm due to the formation of mixed valence species MnII(X4SQ)(X4Cat) from (X = Cl or Br) by the transfer of one electron from Cat2− to MnIII center.  相似文献   

9.
Using a non-planar tridentate ligand 2,6-bis(pyrazol-1-ylmethyl)pyridine (L5) two new coordination complexes [(L5)CoII(H2O)3]Cl2 (1) and [(L5)NiII(H2O)2Cl]Cl·H2O (2) have been synthesized and structurally characterized. Complex 1 has N3O3 distorted octahedral environment around CoII with coordination by L5 (two pyrazole and a pyridine nitrogen in a facial mode) and three water molecules. Complex 2 has N3O2Cl distorted octahedral geometry around NiII with meridional L5 coordination, two water molecules, and a Cl ion. Analysis of the crystal packing diagram reveals the involvement of solvent (water as metal-coordinated and as solvent of crystallization) and counteranion (Cl) to play significant roles in generating 1D chains, involving O-H···Cl, and O-H···O interactions.  相似文献   

10.
Four tridentate dibasic ONO donor hydrazone ligands derived from the condensation of benzoylhydrazine with either 2-hydroxyacetophenone or its para substituted derivatives (H2L1-4, general abbreviation H2L) have been used as primary ligands and 8-hydroxyquinoline (Hhq, a bidentate monobasic ON donor species) has been used as auxiliary ligand. The reaction of [VIVO(acac)2] with H2L in methanol followed by the addition of Hhq in equimolar ratio under aerobic condition afforded the mixed-ligand oxovanadium(V) complexes of the type [VVO(L)(hq)] (1-4) in excellent yield. The X-ray structure of the compound [VVO(L4)(hq)] (4) indicates that the H2L4 ligand is bonded with vanadium meridionally in a tridentate dinegative fashion through its deprotonated phenolic-O, deprotonated enolic-O and imine-N atoms. The V-O bond length order is: oxo < phenolato < enolato. 1H NMR spectra of 4 in CDCl3 solution indicates that it’s solid-state structure is retained in solution. Complexes are diamagnetic and exhibit only ligand to metal charge transfer (LMCT) transition band near 530 nm in CH2Cl2 solution in addition to intra-ligand π → π transition band near 335 nm and they display quasi-reversible one electron reduction peak near − 0.10 V versus SCE in CH2Cl2 solution. λmax (for LMCT transition) and the reduction peak potential values of the complexes are found to be linearly related with the Hammett (σ) constants of the substituents in the aryloxy ring of the hydrazone ligands. λmax and values show large dependence dλmax/dσ = 32.54 nm and V, respectively, on the Hammett constant.  相似文献   

11.
New tetradentate ligands 2-(2-mercaptoethylthio)-N-(pyridin-2-ylmethyl)acetamide H2L1 and 2-chloro-2-(2-mercaptoethylthio)-N-(pyridin-2-ylmethyl)acetamide H2L2 were synthesised from the reaction of 2-aminomethanepyridine with 1,4-dithian-2-one and 3-chloro-1,4-dithian-2-one, respectively. Monomeric complexes of these ligands, of general formulae K[CrIII(Ln)Cl2], K2[MnII(Ln)Cl2] and [M(Ln)] (M = Fe(II), Co(II), Ni(II), Cu(II), Zn(II), Cd(II) or Hg(II); n = 1, 2) are reported. The mode of bonding and overall geometry of the complexes were determined through IR, UV-Vis, NMR and mass spectral studies, magnetic moment measurements, elemental analysis, metal content and conductance. These studies revealed octahedral geometries for the Cr(III), Mn(II) complexes, square planar for Ni(II) and Cu(II) complexes and tetrahedral for the Fe(II), Co(II), Zn(II), Cd(II) and Hg(II) complexes. The study of complex formation via molar ratio in DMF solution has been investigated and results were consistent to those found in the solid complexes with a ratio of (M:L) as (1:1).  相似文献   

12.
Synthesis and crystal structure of two coordination polymers of composition [MnII(H2bpbn)1.5][ClO4]2 · 2MeOH · 2H2O (1) and [CoII(H2bpbn)(H2O)2]Cl2 · H2O (2) [H2bpbn = N,N′-bis(2-pyridinecarboxamido)-1,4-butane], formed from the reaction between [Mn(H2O)6][ClO4]2/CoCl2 · 4H2O with H2bpbn in MeCN, are described. In 1 each MnII ion is surrounded by three pyridine amide units, providing three pyridine nitrogen and three amide oxygen donors. Each MnII center in 1 has distorted MnN3O3 coordination. In 2 each CoII ion is coordinated by two pyridine amide moieties in the equatorial plane and two water molecules provide coordination in the axial positions. Thus, the metal center in 2 has trans-octahedral geometry. In both 1 and 2, the existence of 1D zigzag network structure has been revealed. Owing to π-π stacking of pyridine rings from adjacent layers 1 forms 2D network; 2 forms 2D and 3D network assemblies via N-H?Cl and O-H?Cl secondary interactions. Both the metal centers are high-spin.  相似文献   

13.
New Os(II) complexes including [Os(dpop′)2](PF6)2 (dpop′= dipyrido(2,3-a;3′,2′-j)phenazine) and a series of mixed ligand [Os(dpop′)(N-N)Cl]PF6 (N-N = 2,2′-bipyridine(bpy); 2,2′-bipyrimidine(bpm) and 2,3-bis(2-pyridyl)pyrazine(dpp)) were synthesized. The Os dπ → dpop′ π MLCT transitions for [Os(dpop′)2]2+ are observed at lower energy than for Os dπ → tpy π (tpy = 2,2′:6′,2″-terpyridine) and Os dπ → tppz π (tppz = 2,3,5,6-tetrakis(2-pyridyl)pyrazine) (The ligand abbreviations tpd, tpp and tpypz have also appeared in the literature for 2,3,5,6- tetrakis(2-pyridyl)pyrazine in addition to tppz.) MLCT transitions in the comparative [Os(tpy)2]2+ and [Os(tppz)2]2+ complexes. The Os dπ → dpop′ π MLCT transitions are observed at lower energy in mixed bidentate ligand N-N systems compared with [Os(dpop′)2]2+. Cyclic voltammetry shows more positive osmium oxidation, and less negative ligand reduction potentials for [Os(dpop′)2]2+ as compared to [Os(tpy)2]2+ and [Os(tppz)2]2+ complexes. The osmium oxidation potentials in mixed ligand [Os(dpop′)(N-N)Cl]+ complexes are at less positive potential than for the [Os(dpop′)2]2+ ion. NMR results show different chemical shifts for ring protons either trans or cis to dpop′ in mixed ligand systems, and also show two geometrical isomers for the [Os(dpop′)(dpp)Cl]+ complex. The [Os(dpop′)(dpp)Cl]+ geometric isomer with the pyrazine ring of dpp trans to dpop′ is found more predominate by 1.0/0.7 over the isomer with the pyrazine ring of dpp cis to dpop′ and that inter-conversion of geometric isomers does not occur in room temperature solution on the NMR timescale.  相似文献   

14.
A series of oxo-vanadium(IV) complexes: TpVO(pzH)(CH3COO) (1), TpVO(pzH)(CCl3COO) (2), TpVO(pzH)(C6H5COO) (3), TpVO(pzH)(m-NO2-C6H4COO)·CH3CN (4) and [TpVO(pzH)(H2O)]+[m-NO2-C6H4-SO3]·CH3OH (5) (Tp = hydrotris(3,5-dimethylpyrazolyl)borate; pzH = 3,5-dimethylpyrazole) are synthesized in methanol solution under physiological conditions. They are characterized by elemental analysis, IR, UV-Vis and X-ray crystallography. Structural analyses show that the vanadium atoms in complexes 1-5 are all in a distorted-octahedral environment with the N4O2 donor set, and intra- or inter-hydrogen bonding linkages have been also observed in each complex. Bromination reaction activity of the complexes has been evaluated by the method with phenol red as organic substrate in the presence of H2O2, Br and phosphate buffer, indicating that they can be considered as potential functional model vanadium-dependent haloperoxidases. In addition, thermal analysis and quantum chemistry calculations were also performed and discussed in detail.  相似文献   

15.
The reaction of [ZnLI,II2] (LI = [NH2C(S)NP(O)(OiPr)2]; LII = [PhNHC(S)NP(O)(OiPr)2]) or [Cd2LIV4] (LIV = [PhC(S)NP(O)(OiPr)2]) with 2,2′-bipyridine (bpy) or 1,10-phenanthroline (phen) leads to the heteroligand complexes [Zn(bpy)LI,II2], [Zn(phen)LI,II2], [Cd(bpy)LIV2] or [Cd(phen)LIV2], respectively. The introduction of the diimine ligands into the coordination sphere of the metal cation provokes a change from 1,5-O,S- to 1,3-N,S-coordination of the anionic ligands for Zn but not for the Cd species. The reaction of [Zn(phen)LIV2] (LIV = PhC(S)NP(O)(OiPr)2) with CH2Cl2 cleaves the chlorine atoms from CH2Cl2 and leads to the formation of [Zn(phen)LIVCl] and S,S′-bis(benzimidothio-N-diisopropoxyphosphoryl)methane (LIV-CH2-LIV) in high yields. Using CHCl3 or CCl4 instead of CH2Cl2 does not lead to the formation of chlorine substituted products even under reflux conditions. The new compounds were investigated by 1H and 31P{1H} NMR, IR spectroscopy and microanalysis. Crystal structures of [ZnLII2], [Cd(phen)LIV2]·CH2Cl2, [Zn(bpy)LI2] and [Zn(phen)LIVCl] were elucidated by X-ray diffraction.  相似文献   

16.
The synthesis of the mixed ligand mono metallic [Ru(dpop′)(tppz)]2+ and bimetallic [(dpop′)Ru(tppz)Ru(dpop′)]4+ (dpop′ = dipyrido(2,3-a:3′,2′-j)phenazine; tppz = 2,3,5,6 tetra-(2-pyridyl)pyrazine) complexes is described. The [Ru(dpop′)(tppz)]2+ complex display an intense absorption at 518 nm which is assigned to a Ru(dπ) → dpop′ (π∗) MLCT transition, and at 447 nm which is assigned to a Ru(dπ) → tppz(π∗) MLCT transition. It undergoes emission at RT in CH3CN with λem = 722 nm. The bimetallic [(dpop′)Ru(tppz)Ru(dpop′)]4+ complex shows a low energy absorption shoulder near 635 nm assigned to a Ru(dπ) → tppz(π∗) MLCT transition and an intense peak at 542 nm due to Ru(dπ) → dpop′ (π∗) MLCT transition. The bimetallic complex also emits at RT in CH3CN with λem = 785 nm. Cyclic voltammetry shows reversible Ru+2/+3 oxidations at 1.68 V for the monometallic complex and Ru+2/+3 oxidation couples at +1.94 and +1.70 V for the bimetallic complex.  相似文献   

17.
Four new zinc(II) cyclams of the composition {Zn(L)(tp2−) · H2O}n (1), {Zn(L)(H2bta2−) · 2H2O}n (2), [Zn2(L)2(ox2−)] 2ClO4 · 2DMF (3), and Zn(L)(H2btc)2 · 2DMF (4), where L = cyclam, tp2− = 1,4-benzenedicarboxylate ion, H2bta2− = 1,2,4,5-benzenetetracarboxylate ion, ox2− = oxalate ion, DMF = N,N-dimethylformamide, and H2btc = 1,3,5-benzenetricarboxylate ion, have been synthesized and structurally characterized by a combination of analytical, spectroscopic and crystallographic methods. The carboxylato ligands in the complexes 1-4 show strong coordination tendencies toward zinc(II) cyclams with hydrogen bonding interactions between the pre-organized N-H groups of the macrocycle and oxygen atoms of the carboxylato ligands. The macrocycles in 1, 2, and 4 adopt trans-III configurations with the appropriate R,R,S,S arrangement of the four chiral nitrogen centers, respectively. However, the complex 3 shows an unusual cis V conformation with the R,R,R,R nitrogen configuration. The finding of strong interactions between the carboxylato ligands and the zinc(II) ions may provide additional knowledge for the improved design of receptor-targeted zinc(II) cyclams in anti-HIV agents.  相似文献   

18.
The crystal structures of mononuclear (azido)(pentamethylcyclopentadienyl)iridium(III) complexes bearing 2- or 8-quinolinethiolate (n-Sqn), [CpIr(N3)(n-Sqn)] {n = 2 (1) or 8 (2); Cp = η5-C5Me5} have been determined by X-ray analysis. The 2-Sqn complex, 1, acquires severe steric strains in the four-membered κ2N,S chelate ring, while the 8-Sqn isomer, 2, forms a strain-free five-membered planar κ2N,S chelate ring. It has also been revealed that the corresponding benzimidazole-2-thiolate (Hbimt) complex, which was obtained similarly to the above n-Sqn complexes from [CpIr(N3)2]2 and Na(Hbimt), takes an unsymmetrical dinuclear structure bridged by two Hbimt ligands with different bonding modes, [CpIr(N3){μ(S:N1)-Hbimt}{μ(S:S)-Hbimt}Ir(N3)Cp] · MeOH (3).  相似文献   

19.
Imidazole-2-thiol derivatives H2L1-3 (H2L1 = 1H-benzoimidazole-2-thiol, H2L2 = 5-methyl-1H-benzoimidazole-2-thiol, and H2L3 = 1H-imidazole-2-thiol) act as neutral monodentate ligands in a number of technetium and rhenium complexes. Disubstituted M(V) (M = Tc, Re) complexes of the type [AsPh4]{[MOCl2(H2Ln)2(H2O)]Cl2} are formed when [MOCl4] react with H2L1-3 in 1:2 stoichiometric ratio. Single crystal X-ray structure determinations were carried out on [AsPh4]{[TcOCl2(H2L1)2(H2O)]Cl2}. The coordination sphere is pseudo-octahedral in which the sulfur atoms of two ligands sit in the equatorial plane and a water molecule is in trans to the TcO multiple bond. All the complexes react with an excess of the corresponding ligand to form tetrasubstituted cationic species {[MO(H2Ln)4]Cl3}. These complexes can be also isolated by reaction of [MOCl4] with an excess of ligand. No complex is obtained with benzothiazole-2-thiol (HL4) and benzoxazole-2-thiol (HL5). Ligand exchange reactions of [ReOCl3(PPh3)2] with HL4,5 have also been investigated. Treating the oxo-precursor with HL4 no product is isolated, while with HL5 the chelate oxo-compound [ReOCl2(L5)(PPh3)] is formed as two isomers. An interesting organometallic complex of Re(IV) [ReCl3(L5∗)(PPh3)2] is obtained when a slight excess of HL5 reacts with [ReOCl3(PPh3)2] in refluxing benzene solution and in air. Geometry about the Re atom is approximately octahedral in which the equatorial plane contains three Cl atoms and the carbon atom of the benzoxazole ligand anion, the apical positions are occupied by two PPh3. The reaction with O-ethyl S-hydrogen p-tolyl carbonothioimidate HL6 which contains the same heteroatoms of HL5 does not form an organometallic species, but forms the chelate oxo-Re(V) complex [ReOCl2(L6)(PPh3)]. The solid-state structure has been authenticated by X-ray crystallography.  相似文献   

20.
Preliminary pharmacological studies of various nitric oxide (NO) photo-releasing agents are reported based on the flash-photolysis studies of the nitro ruthenium complexes cis-[RuII(NO2)L(bpy)2]+ (bpy = 2,2′-bipyridine and L = pyridine, 4-picoline and pyrazine) and [RuII(NO2)(bpy)(terpy)]+ (terpy = terpyridine) in physiological medium. The net photoreactions under these conditions are two primary photoproducts, in (I) there is RuII-NO2 photoaquation, where the photoproducts are RuII-H2O plus and (II) homolytic dissociation of NO from a coordinated nitrito to derive the RuII-OH2 specie and NO. Based on photochemical processes, the nitro ruthenium complexes were incorporated in water in oil (W/O) microemulsion and used in the vasorelaxation induced experiment. Denuded rat aortas were contracted with KCl and nitro ruthenium complexes in microemulsion were added. Perfusion pressures were recorded while arteries were irradiated at 355 nm The time to reach maximum relaxation was longer for [RuII(NO2)(bpy)(terpy)]+ complex (ca. 50 min, n = 6) than for cis-[Ru(NO2)L(bpy)2]+ with L = py and 4-pic complex (ca. 28 min, n = 6) and cis-[Ru(NO2)(bpy)2 (pz)]2+ complex (ca. 24 min, n = 5).  相似文献   

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