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Organocatalytic enantioselective (3+2) cycloaddition using stable azomethine ylides

We have developed a highly efficient procedure for carrying out the catalytic enantioselective (3+2) cycloaddition between enals and stable azomethine ylides such as isoquinolinium and phthalizinium methylides. Under the optimized reaction conditions highly substituted chiral pyrroloisoquinolines and pyrrolophthalazines have been obtained in high yields and excellent diastereo- and enantioselectivities.

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253-52-1, Name is Phthalazine, belongs to phthalazine compound, is a common compound. Quality Control of PhthalazineIn an article, once mentioned the new application about 253-52-1.

Cu(I)-Catalyzed Highly Enantioselective [3 + 3] Cycloaddition between Two Different 1,3-Dipoles, Phthalazinium Dicyanomethanides and Iminoester-Derived Azomethine Ylides

(Chemical Equation Presented). The Cu(I)-catalyzed highly enantioselective [3 + 3] cycloaddition between two different 1,3-dipoles, phthalazinium dicyanomethanides and iminoester-derived azomethine ylides, has been achieved under mild reaction conditions, providing novel chiral heterocyclic compounds, 2,3,4,11b-tetrahydro-1H-pyrazino[2,1-a]phthalazine derivatives, in high yields with excellent diastereo- and enantioselectivies (up to 99% yield, 99% ee, >20:1 dr).

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One-Pot, Multi-Component Synthesis of Substituted 2-(6-Phenyl-7H-[1,2,4]Triazolo[3,4-b][1,3,4]Thiadiazin-3-yl)-2,3-Dihydrophthalazine-1,4-Diones

A series of 2-(6-phenyl-7H-[1,2,4]triazolo[3,4-b][1,3,4]thiadiazin-3-yl)-2,3-dihydrophthalazine-1,4-diones (4a?4o) have been synthesized via a one-pot multi-component reaction. The reaction of 4-amino-5-hydrazineyl-4H-1,2,4-triazole-3-thiol (1), substituted 2-bromo-1-phenylethanone (2), and phthalic anhydride (3) in the presence of acetic acid under reflux conditions afforded the title compounds in excellent yields. All the synthesized compounds were fully characterized. (Figure presented.).

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2,3-Dihydrofurans as Potential Cytotoxic and Antibacterial Agents: Tandem Knoevenagel?Michael Cyclization for the Synthesis of 2,3-Dihydrofurans by Using alpha-Tosyloxy Ketone Precursors

Novel 2,3-dihydrofuran derivatives were synthesized through a tandem Knoevenagel?Michael cyclization in good yield by reacting alpha-tosyloxy ketone, 5,5-dimethyl-1,3-cyclohexanedione, and various aldehydes in the presence of phthalazine in acetonitrile. These compounds were subjected to in vitro antibacterial screening against eight micro-organisms by using diffusion method and also in vitro cytotoxicity screening against four human cancerous cell lines by applying MTT assay. Some of the compounds showed impressive activities.

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Electron-transfer Reactions. I. The Application of Derivative Linear-sweep Voltammetry for the Determination of the Rate Constants for Electron Transfer between Two Different Organic Anion Radicals

The kinetic of homogeneous electron-transfer reactions between different anion radicals, A-. and B-. can be conveniently studied by derivative linear-sweep voltammetry under conditions where the dianions, B2-, are rapidly protonated. The method involves measurements of the ratio, R’I(A/B) = I’A/I’B, where I’A and I’B are the maximum values of dI/dt for the reduction of A and B, at different sweep rates for solutions containing both substrates.Working curves have been calculated by digital simulation for the concentration ratios, C0B/C0A = 1, 2, 5 and 10.The approximate kinetic range of the method is given by expression (ii). 104 < k1/(dm3 mol-1 s-1) < 108 (ii) The application of this type of measurement is illustrated by the electron transfer from the anion radicals, A-., of several aromatic compounds to the anion radicals, B-., of azobenzene and 4,4'-dimethylazobenzene.The fit of the experimental data to the working curves is generally excellent for substrates having similar diffusion coefficients.The measured rate constants vary from 2.5x106 dm3 mol-1 s-1, for A = phthalazine and B = azobenzene, to 2.7x104 dm-3 mol-1 s-1, for A = anthracene and B = 4,4'-dimethylazobenzene. If you¡¯re interested in learning more about 23687-27-6, below is a message from the blog Manager. 253-52-1

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1H, 13C, and 15N NMR spectra of some pyridazine derivatives

1H, 13C, and 15N NMR chemical shifts for pyridazines 4-22 were measured using 1D and 2D NMR spectroscopic methods including 1H-1H gDQCOSY,1H-13C gHMQC,1H-13C gHMBC,and1H-15N CIGAR-HMBC experiments. (0 2010 John Wiley & Sons, Ltd.

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Chemistry is the science of change. But why do chemical reactions take place? Why do chemicals react with each other? The answer is in thermodynamics and kinetics.In a document type is Article, the author is Fischer, Theresa and a compound is mentioned, 253-52-1, Phthalazine, introducing its new discovery. 253-52-1

Asymmetric nucleophilic dearomatization of diazarenes by anion-binding catalysis

The first anion-binding organocatalyzed enantioselective Reissert-type dearomatization of diazarenes has been developed. This reaction represents a synthetic challenge since diazarenes have various reactive sites. The use of a chiral tetrakistriazole as a C-H-based hydrogen-donor catalyst allowed the straightforward highly regio- and enantioselective synthesis of a variety of chiral diazaheterocycles.

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A catalyst don’t appear in the overall stoichiometry of the reaction it catalyzes, 253-52-1, but it must appear in at least one of the elementary reactions in the mechanism for the catalyzed reaction. 253-52-1, Name is Phthalazine, molecular formula is C8H6N2. In a Review, authors is Rawling, Tristan£¬once mentioned of 253-52-1

Ruthenium phthalocyanine and naphthalocyanine complexes: Synthesis, properties and applications

This article reviews the synthesis of ruthenium phthalocyanine and naphthalocyanine complexes highlighting important advances, and examines their physical properties and applications.

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Chemistry is the science of change. But why do chemical reactions take place? Why do chemicals react with each other? The answer is in thermodynamics and kinetics.In a document type is Article, the author is Fritsky, Igor O. and a compound is mentioned, 253-52-1, Phthalazine, introducing its new discovery. 253-52-1

Spin crossover in 2D iron(ii) phthalazine cyanometallic complexes

Two new 2D spin-crossover (SCO) analogues of Hofmann clathrates of composition [Fe(phth)2MII(CN)4] (where phth = phthalazine; MII = Pd, Pt) have been synthesized and their structures and switchable behaviour have been characterized. Single-crystal X-ray analysis reveals that the Pt and Pd derivatives contain FeII centres equatorially surrounded by four equivalent mu4-[MII(CN)4]2- groups. Two crystallographically equivalent phthalazine (phth) ligands occupy the axial positions of each FeII site, completing its octahedral coordination environment. The stabilization of these structures is realized via supramolecular C-H?M interactions and pi-pi stacking. Temperature-dependent magnetic susceptibility measurements showed that Pt (T1/2? = 211 K and T1/2? = 218 K) and Pd (T1/2? = 202 K and T1/2? = 207 K) derivatives display cooperative spin crossover with narrow thermal hysteresis loops. In addition, spin crossover in these complexes was characterized by optical measurements, differential scanning calorimetry, and IR and Raman spectroscopy. This research shows that the use of phthalazine leads to the production of new SCO systems with attractive transition characteristics and opens up new perspectives for the design of switchable complexes based on fused bicyclic azine ligands.

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The coordination chemistry of pyridyl oximes

The coordination chemistry of pyridyl oximes is reviewed. Simple pyridyl oximes have the general formula (py)C(R)NOH, where py is a pyridyl group (2-, 3- or 4-) attached to the oxime carbon atom and R can be a donor or a non-donor group. There are also ligands containing more pyridyl and/or oxime groups. The coordination chemistry of twenty-three such ligands is described, including 2-acetylpyridine N-oxide oxime (which strictly speaking is not a pyridyl oxime) and of four polydentate ligands containing pyridyl groups that are not directly attached to the oxime carbon. References are given to methods for the synthesis of the ligands that are not available in the market. The coordination chemistry of each ligand with all metals is detailed, with emphasis being placed on structural features and physical properties (mainly magnetic) of the resulting metal complexes. This report shows that the anions of pyridyl oximes are versatile ligands for a variety of objectives/advantages, including mu2 and mu3 behavior, preparation of polynuclear complexes (clusters) and coordination polymers, mixed-metal chemistry and interesting magnetic characteristics. The activation of 2-pyridyl oximes by 3d-metal centers towards further reactions seems to be an emergent area of synthetic chemistry.

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