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High-resolution infrared analysis of seven fundamental bands of gaseous isothiazole between 750 and 1500 cm-1

The gas phase IR spectrum of isothiazole, C3H3NS, between 550 and 1700 cm-1 was recorded with a resolution of ca. 0.003 cm-1. The rotational structure of seven fundamental bands in the region 750-1500 cm-1 has been assigned and analysed by the Watson Hamiltonian model. A number of local resonances in the bands have been identified and explained qualitatively in terms of Coriolis interactions. For each band upper state spectroscopic constants, including band center, rotational constants, and quartic centrifugal distortion constants are given. From observed crossings due to resonances we locate the weak bands nu9(A?) and nu13(A?) at 1041.9(2) and 642.0(3) cm-1, respectively. The anharmonic frequencies have been determined using a cc-pVTZ basis set, at the MP2 and B3LYP levels; the two theoretical methods give very similar results for rotational constants, anharmonic band center frequencies and distortion constants, and many of these are in good agreement with experiment.

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A preparation N-methyl thiazoline-2-ketone compound by the method (by machine translation)

The invention discloses a method for preparing an N-Methylthiazoline-2-ketone compound. In an inert atmosphere, an organic solvent is taken as a reaction medium, copper salt and an antioxidant are taken as a catalytic system, and a thiazole compound is oxidized into the N-Methylthiazoline-2-ketone compound through an oxidative methylation reaction. The preparation method disclosed by the invention is higher in reactivity, mild in reaction conditions, short in reaction time and high in yield; used catalysts are low in price and toxicity, and less in use amount, a multi-step reaction is shortened to a one-step reaction, and the treatment is simple, thereby being beneficial to purifying products; most importantly, the use of a toxic and volatile methylation reagent is avoided. The catalyst system disclosed by the invention has universality for a variety of reactants. Raw materials of the invention are readily available, and the reaction process is simple and controllable, so that the method is suitable for the industrialized production.

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Solvent effect on nitrogen NMR shieldings in thiazole and thiadiazole systems

High precision 14N NMR measurements are reported for all six possible thiazole and thiadiazole molecules in a variety of solvents.Both solvent polarity and hydrogen bonding effects on the nitrogen nuclear shielding of the solutes are significant.Both types of effect produce an increase in the solute nitrogen shielding.Analysis of experimental data, and molecular orbital studies, indicate that an increase in the polarity of the solvent favours the delocalization of the lone pair electrons from the sulfur atoms into the conjugated rings.This leads to an increase in electronic charge at the nitrogen atom(s) concerned.This effect is more pronounced than analogous effects observed for pyridine type nitrogen atoms in the corresponding diazole and triazole systems.The significant shielding effects which result from solvent to solute hydrogen bonding to ring nitrogen atoms are shown to be essentially local in origin.Thus the shielding concerned is that of the nitrogen atom directly involved in the hydrogen bonding.

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Estrogen Synthetase Inhibitors. 2. Comparison of the in Vitro Aromatase Inhibitory Activity for a Variety of Nitrogen Heterocycles Substituted with Diarylmethane or Diarylmethanol Groups

The preparation and in vitro aromatase inhibitory activity of a wide variety of heterocyclic (4,4′-dichlorodiphenyl)methanes and -methanols are described.The choice of the two diaryl-bearing moieties as a vehicle for the evaluation of the heterocycles was made by the comparison of series of imidazole and pyridine-derived compunds with similar pyrimidine compounds reported previously.A structural model for the most active compounds is also presented.The activity of a related series of compounds which contain two heterocyclic moieties was found to be consistent with the model.Many of the compounds evaluated, including representatives of the pyridine, imidazole, pyrimidine, pyrazole, triazole, thiazole, and isothiazole classes, exhibit EC50 potencies for aromatase inhibition at low nanomolar levels.These compunds are at least as potent as other nonsteroidal aromatase inhibitors reported previously.

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Imidazo[1,2-a]pyridines: Promising drug candidate for antitumor therapy

Imidazo[1,2-a]pyridine has been shown to be an important biologically active moiety. This review is a compilation of the scattered output of results of the anticancer activities of the imidazo[ 1,2-a]pyridine system since 2001, which have been classified as inhibition of CDK, VEGFR, PI3K, EGFR, RGGT etc. along with inhibition against different tumor cell lines. Various imidazo[ 1,2-a]pyridine based analogues have been used as lead molecules and are now under human clinical trials. This review will help the wider scientific community in the area of drug discovery of imidazo[1,2-a]pyridines as novel anticancer agents.

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14N Nuclear quadrupole coupling and methyl internal rotation in the microwave spectrum of 2-methylpyrrole

Using two molecular jet Fourier transform microwave spectrometers, the rotational spectrum of 2-methylpyrrole was recorded in the frequency range from 2 to 40 GHz. From the torsional splittings due to the internal rotation of the methyl group a barrier height of 279.7183(26) cm?1 was deduced. Because of the 14N nucleus, all lines show a quadrupole hyperfine structure. The microwave spectra were analysed using the XIAM and BELGI-Cs-hyperfine codes. The XIAM code enabled us to reproduce the whole data set with a root-mean-square deviation of 5.6 kHz while the BELGI-Cs-hyperfine code could provide a better root-mean-square almost by a factor of 2 compared to that of XIAM. The experimental results were complemented by quantum chemical calculations. The values of the methyl torsional barrier and the 14N nuclear quadrupole coupling constants are discussed and compared with other methyl substituted pyrroles as well as other aromatic five-membered rings.

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Molecular Design of Phenanthrenequinone Derivatives as Organic Cathode Materials

Conjugated carbonyl compounds have become the most promising type of organic electrode materials for rechargeable Li-ion batteries because only they can achieve simultaneously high energy density, high cycling stability, and high power density. In this work, we have performed first-principles density functional theory (DFT) calculations to explore the fundamental rules of how the electronic structure and redox properties of a typical conjugated carbonyl compound, phenanthrenequinone (PQ), are modified by adjusting the heteroaromatic building blocks. Such a molecular design strategy allows for the improvement in discharge potential while the specific capacity remains nearly unchanged. The correlation between the electronic structures and redox properties for the designed PQ derivatives is systematically discussed. It is demonstrated that the discharge potential of the PQ derivatives depends strongly on the frontier orbital levels, the electric potential, and the Li-bonding configurations. The electrostatic potential (ESP) maps show visible displays of molecular electric structures and can be applied to understand how the redox properties of the PQ derivatives are modified by the heteroaromatic building blocks.

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Structural and energetic characterization of the emissive RNA alphabet based on the isothiazolo[4,3-: D] pyrimidine heterocycle core

We present theoretical characterization of fluorescent non-natural nucleobases, tzA, tzG, tzC, and tzU, derived from the isothiazolo[4,3-d]pyrimidine heterocycle. Consistent with the experimental evidence, our calculations show that the non-natural bases have minimal impact on the geometry and stability of the classical Watson-Crick base pairs, allowing them to accurately mimic natural bases in a RNA duplex, in terms of H-bonding. In contrast, our calculations indicate that H-bonded base pairs involving the Hoogsteen edge are destabilized relative to their natural counterparts. Analysis of the photophysical properties of the non-natural bases allowed us to correlate their absorption/emission peaks to the strong impact of the modification on the energy of the lowest unoccupied molecular orbital, LUMO, which is stabilized by roughly 1.0-1.2 eV relative to the natural analogues, while the highest occupied molecular orbital, HOMO, is not substantially affected. As a result, the HOMO-LUMO gap is reduced from 5.3-5.5 eV in the natural bases to 4.0-4.4 eV in the modified ones, with a consequent bathochromic shift in the absorption and emission spectra.

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Carbene complexes derived from lithiated heterocycles, mainly azoles, by transmetallation

Heterocyclic carbene complex formation can be achieved by lithiation of CH-acidic azoles, transmetallation involving a variety of transition metal complexes and, finally, protonation or alkylation. This article describes the synthetic methodology involved with a special emphasis on unexpected or (presently) unusual features of the reactions or products. The procedure can be extended to allow carbene complex formation by reaction at remote heteroatoms and also for diorgano(carbene) complex formation. Certain azolyls do not substitute but add to coordinated carbonyls and the resulting anionic Fischer-type carbene complexes can function as bidentate ligands. With gold(I) as central metal, many azolyls as well as carbene complexes participate in homoleptic rearrangement.

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THE MOLECULAR STRUCTURE OF ISOTHIAZOLE FROM ELECTRON DIFFRACTION AND AB INITIO CALCULATIONS

The molecular structure of isothiazole (<*>SNCHCHCH<*>) has been determined by gas electron diffraction and by ab initio calculations.The molecule was assumed to be planar on the basis of the small inertial defect obtained by earlier microwave studies.The following bond lengths (rg)and bond angles were obtained: S-N 1.642+/-0.005, S-C 1.702+/-0.005, N=C 1.319+/-0.003, C-C 1.436+/-0.003, C=C 1.388+/-0.003, (C-H)mean 1.102+/-0.003 Angstroem, C-S-N 96.1+/-0.2, S-N=C 112.2+/-0.3, N=C-C 111.8+/-0.4, C-C=C 113.8+/-0.4, C=C-S 106.2+/-0.3 deg.The principal moments of inertia calculated from the present electron diffraction geometry are in excellent agreement with those from the microwave studies.The Gaussian 82 program with a 3-21G* basis set (with six d orbitals on sulfur) was used to derive the geometry from ab initio calculations.These calculations facilitated model selection in the electron diffraction analysis.There is a good overall agreement between experimental and computed structures.

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