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Application of 141-30-0, The reaction rate of a catalyzed reaction is faster than the reaction rate of the uncatalyzed reaction at the same temperature.141-30-0, Name is 3,6-Dichloropyridazine, molecular formula is C4H2Cl2N2. In a Patent,once mentioned of 141-30-0

Novel (4-substituted-piperazinyl)pyridazines

Novel (4-substituted-piperazinyl)pyridazines of formula wherein R is hydrogen, halo, C1-6alkyloxy, hydroxy or phenyl;, m is the integer 2 or 3;, R¹, R², R³ and R4 are, each independently, hydrogen, or C1-6alkyl;, or where R³ and R4 are substituted on a different carbon atom, R³ and R4 taken together, may form a bivalent radical -CH2-CH2-;, R5 is (aryl)C2-6alkenyl, (aryl)C2-6alkynyl, (aryl)(hydroxy)­C1-6alkyl or (aryl)(oxo)C1-6alkyl;, the N-oxide forms, the pharmaceutically acceptable acid addition salts and the possible stereochemically isomeric forms, which compounds are analgesic and antitussive agents; pharmaceutical compositions containing such compounds as an active ingredient and methods of preparing said compounds and pharmaceutical compositions.

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Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1522 – PubChem

 

Final Thoughts on Chemistry for 141-30-0

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Reference of 141-30-0, 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, and a compound is mentioned, 141-30-0, 3,6-Dichloropyridazine, introducing its new discovery.

Quinoxaline studies. 23. Potential antimalarials. Substituted 5,8-dimethoxy-6-[N-(omega-dimethylaminoalkyl)amino]quinoxalines were prepared: the first series with identical 2,3-substituents H, CH3, C6H5, C6H4-4-Cl, and CH2C6H5; and the second with identical styryl groups CH=CHC6H5, CH=CHC6H4-4-Cl, CH=CHC6H3-3,4-Cl2, CH=CHC6H4-4-F, CH=CHC6H4-4-CF3, and CH=CHC6H4-4-NO2. None of the substances

3-Hydrazinopyridazines substituted in position 6 with a primary amine, secondary amine, or an alkoxy group were synthesized and screened for antihypertensive activity. In general, the 6-dialklamino derivatives are the most active; the (2-hydroxypropyl)methylamino chain provides the best combination of high antihypertensive activity and toxicity.

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Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1861 – PubChem

 

Discovery of 3,6-Dichloropyridazine

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Synthetic Route of 141-30-0, 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 Patent, and a compound is mentioned, 141-30-0, 3,6-Dichloropyridazine, introducing its new discovery.

CYCLOHEXYL ACID TRIAZOLE AZINES AS LPA ANTAGONISTS

The present invention provides compounds of Formula (I): Formula (I) or a stereoisomer, tautomer, or pharmaceutically acceptable salt or solvate thereof, wherein all the variables are as defined herein. These compounds are selective LPA receptor inhibitors.

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Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1511 – PubChem

 

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141-30-0, Name is 3,6-Dichloropyridazine, belongs to pyridazine compound, is a common compound. Formula: C4H2Cl2N2In an article, once mentioned the new application about 141-30-0.

Synthesis and Antiarrhythmic and Parasympatholytic Properties of Substituted Phenols. 1. Heteroarylamine Derivatives

Twenty-four structural derivatives of the antiarrhythmic drug changrolin were synthesized and tested for antiarrhythmic and parasympatholytic activities.It was found that while the bis(pyrrolidinylmethyl)phenol pattern of changrolin appeared to be optimal in this series, a wide latitude existed for the heteroaryl substituent for maintaining good antiarrhythmic activity.Further, the antiarrhythmic and parasympatholytic activities tended to exhibit parallel changes.

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Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1907 – PubChem

 

The Absolute Best Science Experiment for 3,6-Dichloropyridazine

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One of the major reasons for studying chemical kinetics is to use measurements of the macroscopic properties of a system, Safety of 3,6-Dichloropyridazine, such as the rate of change in the concentration of reactants or products with time.In a article, mentioned the application of 141-30-0, Name is 3,6-Dichloropyridazine, molecular formula is C4H2Cl2N2

PYRIDO[1,2-a]PYRIMIDONE DERIVATIVES AS A mTOR/PI3K SUPPRESSOR

The invention discloses pyrido[1,2-a]pyrimidone derivatives as a mTOR/PI3K suppressor; and in particular, this invention relates to a compound having the formula (I) structure or its pharmaceutically acceptable salts.

Sometimes chemists are able to propose two or more mechanisms that are consistent with the available data. Safety of 3,6-Dichloropyridazine, If a proposed mechanism predicts the wrong experimental rate law, however, the mechanism must be incorrect.Welcome to check out more blogs about 141-30-0, in my other articles.

Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1578 – PubChem

 

New explortion of 141-30-0

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Chemistry is traditionally divided into organic and inorganic chemistry. category: pyridazine, The former is the study of compounds containing at least one carbon-hydrogen bonds.In a patent,Which mentioned a new discovery about 141-30-0

HETEROCYCLIC SULFONAMIDE DERIVATIVES AS INHIBITORS OF FACTOR XA

The invention relates to compounds of formula (I), Chemical formula should be inserted here. Please see paper copy wherein R 1 is hydrogen, C 1-3 alkyl, R 5 R 6 aminoC 1-5 alkyl, where R 5 and R 6 are each independently selected from hydrogen and C 1-3 alkyl, or R 5 and R 6 may, together with the nitrogen to which they are attached, form a five- or six-membered heterocyclic ring, where said heterocyclic ring has 0 or 1 additional heteroatom; n is 1 or 2; each R 2 are independently selected from hydrogen, oxo and C 1-3 alkyl, R 3 is an indolyl, and R 4 a hydrogen or a halogen; or a pharmaceutically acceptable salt thereof, said compounds possess antithrombotic and anticoagulant properties and are accordingly useful in methods of treatment of humans or animals. The invention also relates to processes for the preparation of the compounds, to their use, to pharmaceutical compositions comprising them, to their use in the manufacture of medicaments for use in the production of an antithrombotic or anticoagulant effect, and to combinations comprising them

If you are interested in 141-30-0, you can contact me at any time and look forward to more communication. category: pyridazine

Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1240 – PubChem

 

Properties and Exciting Facts About 3,6-Dichloropyridazine

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Proton pump inhibitors

no abstract published

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Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1381 – PubChem

 

New explortion of 3,6-Dichloropyridazine

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In heterogeneous catalysis, the catalyst is in a different phase from the reactants. Safety of 3,6-Dichloropyridazine, At least one of the reactants interacts with the solid surface in a physical process called adsorption in such a way. 141-30-0, name is 3,6-Dichloropyridazine. In an article,Which mentioned a new discovery about 141-30-0

SPIRO COMPOUNDS AS NPY Y5 RECEPTOR ANTAGONISTS

The present invention relates to novel compounds of formula (I), or a pharmaceutically acceptable salt thereof,wherein R is an aryl or heteroaryl, which may be substituted by one or more: halogen, C1-C4 alkyl, C1-C4 alkoxy, C1-C4 haloalkyl, C1-C4 haloalkoxy, cyano;Z1 is H, C1-C4 alkyl or F;Z is CH2, CH(C1-C4 alkyl), C(C1-C4 alkyl)2 or a bond;A is a 6-10 membered aryl or heteroaryl, which may be substituted by one or more: halogen, C1-C4 alkyl, C1-C4 alkoxy, C1-C4 haloalkyl, C1-C4 haloalkoxy, cyano; or ?C(?O)?X; or ?O(CH2)0-1R1;B is hydrogen or is a 5-6 membered heteroaryl, or a 4-6 membered heterocycle, or phenyl, which may be substituted by one or more: halogen, C1-C4 alkyl, C1-C4 alkoxy, C1-C4 haloalkyl, C1-C4 haloalkoxy, hydroxyl, cyano; A and B being linked via any atom;R1 is ?(C1-C4)alkyl(C1-C4)alkoxy; or C3-C8 cycloalkyl; or R1 is an aryl or heteroaryl, which may be substituted by one or more: halogen, C1-C4 alkyl, C1-C4 alkoxy, C1-C4 haloalkyl, C1-C4 haloalkoxy, cyano; or R1 is a 4-6 membered heterocycle, which may be substituted by one or more: halogen, C1-C4 alkyl, C1-C4 alkoxy, C1-C4 haloalkyl, C1-C4 haloalkoxy, cyano;X is OR2 or NR3R4;R2 is C1-C4 alkyl;R3 is hydrogen or together with R4 and the nitrogen form a 5-6 saturated membered ring;R4 is C3-C8 cycloalkyl; processes for their preparation, intermediates used in these processes, pharmaceutical compositions containing them and their use in therapy, as NPY Y5 receptor antagonists and as agents for the treatment and/or prophylaxis of eating disorders such as a binge eating disorder.

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Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1232 – PubChem

 

Brief introduction of 141-30-0

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A new class of luminescent tricarbonyl rhenium(I) complexes containing bridging 1,2-diazine ligands: electrochemical, photophysical, and computational characterization

A novel class of luminescent tricarbonyl rhenium(I) complexes of general formula [Re2(mu-X)2(CO)6(mu-diaz)] (X = halogen and diaz = 1,2-diazine) was prepared by reacting [ReX(CO)5] with 0.5 equiv of diazine (seven different ligands were used). The bridging coordination of the diazine in these dinuclear complexes was confirmed by single-crystal X-ray analysis. Cyclic voltammetry in acetonitrile showed for all the complexes (but the phthalazine derivative) a chemically and electrochemically reversible ligand-centered reduction, as well as a reversible metal-centered bielectronic oxidation. With respect to the prototypical luminescent [ReCl(CO)3(bpy)] complex, the oxidation is more difficult and the reduction easier (about +0.3 V), so that a similar highest occupied molecular orbital-lowest unoccupied molecular orbital gap is observed. All of the complexes exhibit photoluminescence at room temperature in solution, with broad unstructured emission from metal-to-ligand charge-transfer states, at lambda in the range 579-620 nm. Lifetimes (tau = 20-2200 ns) and quantum yields (Phi up to 0.12) dramatically change upon varying the bridging ligand X and the diazine substituents: in particular, quantum yields decrease in the series Cl, Br, and I and in the presence of substituents at the alpha positions of the pyridazine ring. A combined density functional and time-dependent density functional study of the geometry, relative stability, electronic structure, and photophysical properties of all the pyridazine derivatives was performed. The nature of the excited states involved in the electronic absorption spectra was ascertained, and trends in the energy of the highest occupied and lowest unoccupied molecular orbitals upon changing the pyridazine substituents and the bridging halogen ligands were discussed. The observed emission properties of these complexes were shown to be related to a combination of steric and electronic factors affecting their ground-state geometry and their stability.

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Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1677 – PubChem

 

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Functionalized heteroarylpyridazines and pyridazin-3(2H)-one derivatives via palladium-catalyzed cross-coupling methodology

(Chemical Equation Presented) A general method for the synthesis of functionalized pyridazinylboronic acids/esters is described involving a directed ortho metalation (DoM)-boronation protocol (Schemes 1 and 2). A comprehensive study of the reactivity of the C-B bond in palladium-catalyzed cross-couplings with aryl/heteroaryl halides is presented. Aryl-/heteroarylpyridazines are thereby obtained in synthetically viable yields (typically 40-75%) although in some cases competing protodeboronation has been observed. A series of pyridazin-3(2H)-one derivatives, including 4,6-diaryl/heteroaryl derivatives, have been obtained from the corresponding 3-methoxypyridazines in straightforward procedures (Schemes 3 and 4). Several X-ray crystal structures of aryl-/heteroarylpyridazines and derived pyridazin-3(2H)-one derivatives are reported. These multi-ring systems are of considerable interest in contemporary N-heterocyclic chemistry.

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Reference:
Pyridazine – Wikipedia,
Pyridazine | C4H4N1652 – PubChem