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1.
The [ReOX2(hbt)(EPh3)] (X = Cl, Br; E = As, P) chelates have been prepared in the reactions of [ReOX3(EPh3)2] complexes (X = Cl, Br; E = P, As) with 2-(2′-hydroxyphenyl)-2-benzothiazole (hbtH) in acetone. From the reactions of [ReOX3(PPh3)2] with hbtH two kind of crystals [ReOX2(hbt)(PPh3)] · MeCN and [ReOX2(hbt)(PPh3)] with different arrangement of halide ions (cis and trans) were isolated, whereas the [ReOX3(AsPh3)2] oxocompounds react with hbtH to give only cis-halide isomers. The complexes were structurally and spectroscopically characterised. The electronic structures of both [ReOBr2(hbt)(PPh3)] isomers have been calculated with the density functional theory (DFT) method. The TDDFT/PCM calculations have been employed to produce a hundred of singlet excited-states starting from the ground-state geometry optimized in the gas phase of cis- and trans-halide isomers of [ReOBr2(hbt)(PPh3)] and the UV–Vis spectra of these complexes have been discussed on this basis.  相似文献   

2.
Semi-empirical (AM1-SCI) calculations have been performed on 2-(2′-hydroxyphenyl)oxazole (HPO), 2-(2′-hydroxyphenyl)imidazole (HPI) and 2-(2′-hydroxyphenyl)thiazole (HPT) to rationalise the photophysical behaviour of the compounds exhibiting intramolecular rotation as well as excited state intramolecular proton transfer (ESIPT). The calculations reveal that there is a gradual variation in the properties from HPO to HPT through HPI so far as the existence of the rotational isomers in the ground state is concerned. While HPO gives rise to two stable rotamers (I and II) in all the common solvents, there is only one stable species for HPT in the S0 state. For HPI, rotamer II is possible only in the isolated state and/or in solvents of low polarity, but in high polar solvents it gives rise to the normal form (I) only. For all the molecules in the series, however, intramolecular proton transfer (IPT) takes place in the lowest excited singlet (S1) and the triplet (T1) states. Combination of the rotamerism and ESIPT gives rise to multiple fluorescence bands for the fluorophores. Theoretical assignments have been made for the excitation, fluorescence and phosphorescence bands. Simulated potential energy curves (PEC) in different electronic states reveal that the IPT process is feasible in either of the S1 and T1 states but not in the ground state. The ESIPT reaction has been found to be favoured both thermodynamically and kinetically in these electronic states compared to the ground state. However, quantum mechanical tunnelling has been proposed for the prototropic reaction to proceed in the excited states.  相似文献   

3.
J.G. Ma?ecki 《Polyhedron》2012,31(1):159-166
[RuCl2(HBO)(PPh3)2] and [RuCl(CO)(HBO)(PPh3)2] complexes with the 2-(2-hydroxyphenyl)benzoxazole (C13H9NO2) ligand were synthesized and characterized by infra red, proton and phosphorus nuclear magnetic resonances, electronic absorption and emission spectroscopies and X-ray crystallography. The experimental studies were completed by theoretical calculations. The calculations show that the donor properties of the carbonyl group predominates the π-acceptor ability in the ruthenium(II) complex. The small transfer of electron density to the acceptor π carbonyl orbitals is compensated by the presence of the chloride acceptor ligand. The electronic structures of these complexes, presented in particular by density of states diagrams, have been correlated with their ability to fluorescence and have been used to analyze the UV-Vis spectra.  相似文献   

4.
[RuH(CO)(SCN)(PPh3)3] and [RuH(CO){SCN}(PPh3)2(L)]{SCN} complexes (where L = benzimidazole, 2-(2-pyridyl)benzimidazole and 2,2′-bis(4,5-dimethylimidazolyl)) have been prepared and studied by IR, NMR, UV–Vis spectroscopy and X-ray crystallography. Electronic structures and bonding of the obtained complexes were defined on the basis of DFT method. Values of the ligand field parameter 10Dq and Racah’s parameters were estimated for the studied compounds, and the luminescence properties were determined.  相似文献   

5.
J.G. Ma?ecki  A. Maroń 《Polyhedron》2011,30(7):1225-1232
[RuH(CO)(dpa)(PPh3)2]X and [RuHX(CO)(pyCHPh)(PPh3)2] (X = Cl, NCS) complexes (where dpa = 2,2′-dipyridylamine, pyCHPh = 4-(3-phenylpropyl)pyridine) have been prepared and studied using IR, NMR, UV-Vis spectroscopies and X-ray crystallography. The electronic structures and bonding of the obtained complexes were defined on the basis of the DFT method. The electronic spectra of the complexes were calculated and associated with the structure of the molecular orbitals of the complexes. The luminescence properties of the complexes were determined.  相似文献   

6.
7.
Reaction of 1-(2′-pyridylazo)-2-naphthol (Hpan) with [Ru(dmso)4Cl2] (dmso = dimethylsulfoxide), [Ru(trpy)Cl3] (trpy = 2,2′,2″-terpyridine), [Ru(bpy)Cl3] (bpy = 2,2′-bipyridine) and [Ru(PPh3)3Cl2] in refluxing ethanol in the presence of a base (NEt3) affords, respectively, the [Ru(pan)2], [Ru(trpy)(pan)]+ (isolated as perchlorate salt), [Ru(bpy)(pan)Cl] and [Ru(PPh3)2(pan)Cl] complexes. Structures of these four complexes have been determined by X-ray crystallography. In each of these complexes, the pan ligand is coordinated to the metal center as a monoanionic tridentate N,N,O-donor. Reaction of the [Ru(bpy)(pan)Cl] complex with pyridine (py) and 4-picoline (pic) in the presence of silver ion has yielded the [Ru(bpy)(pan)(py)]+ and [Ru(bpy)(pan)(pic)]+ complexes (isolated as perchlorate salts), respectively. All the complexes are diamagnetic (low-spin d6, S = 0) and show characteristic 1H NMR signals and intense MLCT transitions in the visible region. Cyclic voltammetry on all the complexes shows a Ru(II)–Ru(III) oxidation on the positive side of SCE. Except in the [Ru(pan)2] complex, a second oxidative response has been observed in the other five complexes. Reductions of the coordinated ligands have also been observed on the negative side of SCE. The [Ru(trpy)(pan)]ClO4, [Ru(bpy)(pan)(py)]ClO4 and [Ru(bpy)(pan)(pic)]ClO4 complexes have been observed to bind to DNA, but they have not been able to cleave super-coiled DNA on UV irradiation.  相似文献   

8.
The [ReOCl2(hmpbta)(AsPh3)] · MeCN, [ReOBr2(hmpbta)(AsPh3)] · MeCN, [ReOCl2(hmpbta)(PPh3)] · MeCN, [ReOBr2(hmpbta)(PPh3)] · MeCN, and [ReBr2(hmpbta)(PPh3)] · MeCN complexes have been prepared in the reactions of [ReOX3(EPh3)2] (X = Cl, Br; E = P, As) with 2-(2’-hydoxy-5′-methylphenyl)benzotriazole in molar ratio 1:1. All the compounds were structurally and spectroscopically characterized. The electronic structure of [ReOCl2(hmpbta)(AsPh3)] has been calculated with the density functional theory (DFT) method. The TDDFT/PCM calculations have been employed to produce a hundred of singlet excited-states starting from the ground-state geometry optimized in the gas phase, and the UV–Vis spectrum of [ReOCl2(hmpbta)(AsPh3)] has been discussed on this basis. The paper reports also X-ray structure and DFT calculations for the disubstituted [ReOCl(hmpbta)2] chelate.  相似文献   

9.
The reactions of [ReOX3(AsPh3)2] and [ReOX3(PPh3)2] with 2-(2′-hydroxyphenyl)-2-benzoxazoline (Hhbo) have been examined and [ReOX2(hbo)(AsPh3)] and [ReOX2(hbo)(PPh3)] (X = Cl, Br) complexes have been obtained. The crystal and molecular structures of [ReOCl2(hbo)(AsPh3)] (1) and [ReOBr2(hbo)(PPh3)] (4) have been determined. The electronic structures of 1 and 4 have been calculated with the density functional theory (DFT) method. The spin-allowed electronic transitions of 1 and 4 have been calculated with the time-dependent DFT method, and the UV–Vis spectra of these complexes have been discussed.  相似文献   

10.
J.G. Ma?ecki 《Polyhedron》2011,30(1):79-85
[RuHCl(CO)(PPh3)2(py)], [RuHCl(CO)(PPh3)2(pyIm)] and [RuCl(CO)(PPh3)2(pyoh)]·2CH3OH complexes (where py = pyridine, pyIm = imidazo[1,2-α]pyridine, pyoh = 2-hydroxy-6-methylpyridine) have been prepared and studied by IR, NMR, UV-Vis spectroscopy and X-ray crystallography. Electronic structures and bonding of the complexes were defined on the basis of DFT method, and the pyridine derivative ligands were compared on the basis of their donor-acceptor properties. Values of the ligand field parameter 10Dq and Racah’s parameters were estimated for the studied compounds, and the luminescence properties were determined.  相似文献   

11.
用INDO系列方法对2-(2′-羟基苯基)间氮杂氧茚的旋转异构和质子转移反应进行研究,求得基态和激发态反应的位能面、势垒、过渡态,对有关化合物的吸收和荧光光谱进行了理论指认。计算与实验结果符合较好,并对光化学反应机理和应用前景进行了讨论。  相似文献   

12.
The reaction of [CpRu(PPh3)2Cl] and [CpOs(PPh3)2Br] with chelating 2-(2′-pyridyl)imidazole (N ∩ N) ligands and NH4PF6 yields cationic complexes of the type [CpM(N ∩ N)(PPh3)]+ (1: M = Ru, N ∩ N = 2-(2′-pyridyl)imidazole; 2: M = Ru, N ∩ N = 2-(2′-pyridyl)benzimidazole; 3: M = Ru, N ∩ N = 2-(2′-pyridyl)-4,5-dimethylimidazole; 4: M = Ru, N ∩ N = 2-(2′-pyridyl)-4,5-diphenylimidazole; 5: M = Os, N ∩ N = 2-(2′-pyridyl)imidazole; 6: M = Os, N ∩ N = 2-(2′-pyridyl)benzimidazole). They have been isolated and characterized as their hexafluorophosphate salts. Similarly, in the presence of NH4PF6, [Cp∗Ir(μ-Cl)Cl]2 reacts in dry methanol with N ∩ N chelating ligands to afford in excellent yield [Cp∗Ir(N ∩ N)Cl]PF6 (7: N ∩ N = 2-(2′-pyridyl)imidazole; 8: N ∩ N = 2-(2′-pyridyl)benzimidazole). All the compounds have been characterized by infrared and NMR spectroscopy and the molecular structure of [1]PF6, [2]PF6 and [7]PF6 by single-crystal X-ray structure analysis.  相似文献   

13.
Reactions of [Ru(PPh3)3Cl2] with ROCS2K in THF at room temperature and at reflux gave the kinetic products trans-[Ru(PPh3)2(S2COR)2] (R = nPr 1, iPr 2) and the thermodynamic products cis-[Ru(PPh3)2(S2COR)2] (R = nPr 3, iPr 4), respectively. Treatment of [RuHCl(CO)(PPh3)3] with ROCS2K in THF afforded [RuH(CO)-(S2COR)(PPh3)2] (R = nPr 5, iPr 6) as the sole isolable products. Reaction of [RuCl2(PPh3)3] with tetramethylthiuram disulfide [Me2NCS2]2 gave a Ru(III) dithiocarbamate complex, [Ru(PPh3)2(S2CNMe2)Cl2] (7). This reaction involved oxidation of ruthenium(II) to ruthenium(III) by the disulfide group in [Me2NCS2]2. Treatment of 7 with 1 equiv. of [M(MeCN)4][ClO4] (M = Cu, Ag) gave the stable cationic ruthenium(III)-alkyl complexes [Ru{C(NMe2)QC(NMe2)S}(S2CNMe2)(PPh3)2][ClO4] (Q = O 8, S 9) with ruthenium-carbon bonds. The crystal structures of complexes 1, 2, 4·CH2Cl2, 6, 7·2CH2Cl2, 8, and 9·2CH2Cl2 have been determined by single-crystal X-ray diffraction. The ruthenium atom in each of the above complexes adopts a pseudo-octahedral geometry in an electron-rich sulfur coordination environment. The 1,1′-dithiolate ligands bind to ruthenium with bite S-Ru-S angles in the range of 70.14(4)-71.62(4)°. In 4·CH2Cl2, the P-Ru-P angle for the mutually cis PPh3 ligands is 103.13(3)°, the P-Ru-P angles for other complexes with mutually trans PPh3 ligands are in the range of 169.41(4)-180.00(6)°. The alkylcarbamate [C(NMe2)QC(NMe2)S] (Q = O, S) ligands in 8 and 9 are planar and bind to the ruthenium centers via the sulfur and carbon atoms from the CS and NC double bonds, respectively. The Ru-C bond lengths are 1.975(5) and 2.018(3) Å for 8 and 9·2CH2Cl2, respectively, which are typical for ruthenium(III)-alkyl complexes. Spectroscopic properties along with electrochemistry of all complexes are also reported in the paper.  相似文献   

14.
The [Ru(SCN)2(PPh3)2(L)2] complexes, where L = HPz, PhIm, HTz, have been prepared and studied by IR, NMR, UV–vis spectroscopy and X-ray crystallography. The complexes were prepared in the reactions of [RuCl2(PPh3)3] with pyrazole, benzimidazole and triazole in methanol solutions. The electronic structures of the obtained compounds have been calculated using the TD–DFT method.  相似文献   

15.
Eleven new complexes of the form cis-[RuII(bpy)2(LA)]4+ (bpy = 2,2′-bipyridyl; LA = a pyridinium-substituted bpy derivative) have been prepared and isolated as their PF6 salts. Characterisation involved various techniques including 1H NMR spectroscopy and MALDI mass spectrometry. The UV-Vis spectra show intense intraligand π → π absorptions and metal-to-ligand charge-transfer (MLCT) bands with two distinct maxima in the visible region. Small shifts in the MLCT bands correlate with the electron-withdrawing strength of the ligand LA. Cyclic voltammograms show quasi-reversible or reversible RuIII/II oxidation waves, and two or more ligand-based reductions with varying degrees of reversibility. The variations in the redox potentials correlate with changes in the structure of LA, and also with the MLCT energies. Differential pulse voltammetry allows the first reduction process for two of the complex salts to be resolved into two peaks. Single-crystal X-ray structures have been solved for three of the new complex salts and also for a pro-ligand salt. Two carboxylate-functionalised compounds have been tested as photosensitizers on TiO2-coated electrodes, but show only negligible efficiencies, in accord with expectations.  相似文献   

16.
Reaction between 9,9′-spirobifluorene and [CpM]+ (where M = Fe and Ru) equivalents gives the complexes [CpRu(η6-SBF)][PF6] (1), [(CpRu)266-SBF)][PF6]2 (2) and [(CpFe)266-SBF)][PF6]2 (3), respectively. Single crystal X-ray structures of 1 and 3 show that the metal atoms exhibit distorted η6-coordination to SBF phenyl moieties primarily as a consequence of steric interactions between Cp and SBF. The structure of 3 contains each of the possible C2 enantiomers whereas NMR spectroscopy shows signals consistent with a 1:1 mixture of C2 and C1 stereoisomers for both 2 and 3. In conjunction with electrochemical data the observations are consistent with SBF acting as a molecule containing two independent biphenyl moieties.  相似文献   

17.
The hydride carbonyl ruthenium(II) [RuH(CO)(pyzCOO)(PPh3)2] (1), [RuH(CO)(pyz-2,3-COO[CH3])(PPh3)2]·H2O (2) and dinuclear Ru(II)/Ru(III) [RuH(CO)(PPh3)(pyz-2,3-COO)Ru(CO)Cl2(PPh3)2] (3) complexes were synthesized and characterized by IR, 1H, 31P NMR, UV-Vis spectroscopy and X-ray crystallography. The experimental studies were complemented by quantum chemical calculations, which were used to identify the nature of the interactions between the ligands and the central ion, and the orbital composition in the frontier electronic structure. Based on a molecular orbital scheme, the calculated results allowed the interpretation of the UV-Vis spectra obtained at an experimental level. The luminescence property of the complex 2 was determined. The ac magnetic susceptibility measurements showed a residual magnetism evidenced by the small values of the molar susceptibility, not exceeding 0.5 emu/mol at 2 K, a lack of a Curie-Weiss region and weak magnetic interactions below 20 K.  相似文献   

18.
The preparation of 4′-(3,5-dimethylpyrazol-1-yl)-2,2′:6′,2″-terpyridine (2) under acidic conditions results in the formation of the salts [H22][MeOSO3]2 and [H22][EtOSO3]2, treatment of which with base leads to neutral 2. The structure of [H22][EtOSO3]2 · H2O has been established by single crystal X-ray diffraction. The complexes [Fe(2)2][PF6]2 and [Ru(2)2][PF6]2 have been prepared and characterized, and the single crystal structure determination of [Ru(2)2][PF6]2 is reported; [Fe(2)2][PF6]2 is isostructural with [Ru(2)2][PF6]2. Treatment of [Fe(2)2]2+ with PdCl2 produces [Pd(2)Cl]+, isolated and structurally characterized as the hexafluoridophosphate salt, illustrating that metal exchange within the tpy-binding domain occurs in preference to palladium(II) coordination by the N-donor atom of the pendant 3,5-dimethylpyrazol-1-yl unit in 2. [Pd(2)Cl]2+ can also be prepared from PdCl2 and [H22][MeOSO3]2 in refluxing methanol.  相似文献   

19.
Two 1-D and 3-D Ag(I) complexes involving 2-(pyridin-4-yl)-1H-imidazole-4,5-dicarboxylic acid (H3PIDC) have been characterized by infrared spectrum, elemental analysis, and single-crystal X-ray diffraction. [Ag2(HPIDC)]n (1), synthesized under hydrothermal conditions, gave a 3-D framework; [Ag2(HPIDC)(MBI)]n (2) (MBI?=?2-methyl-1H-benzo[d]imidazole), with MBI as the second ligand, gave a 1-D zigzag chain and further formed a 3-D supramolecular structure through π···π interactions. The most interesting structural features of these complexes are the presence of C–H···Ag hydrogen bonding interactions and Ag···C weak interactions between the Ag centers and H3PIDC. Luminescence indicates that 2 has significantly stronger fluorescent emissions than 1 in the solid state at room temperature.  相似文献   

20.
A ‘synthesis-at-metal’ approach is described for the preparation of extended ethynylnaphthalene-based ruthenium(II) 2,2′:6′,2″-terpyridine complexes.  相似文献   

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