1204601-40-0Relevant academic research and scientific papers
Simple Br?nsted acid catalyzed C-H functionalization: Efficient access to poly-substituted pyridines
Lai, Shujun,Ren, Xuwen,Zhao, Jinzhong,Tang, Zhuo,Li, Guangxun
, p. 2957 - 2961 (2016)
An exceptionally simple and environmentally friendly methodology has been developed for directly functionalizing the benzylic C-H bond of the poly-substituted pyridines with aromatic imines. Simple Br?nsted acid catalysts including salicylic acid and TsOH were successfully employed. Different types of poly-substituted pyridines could be efficiently obtained with moderate yields. Traditional ways to such types of pyridines involved the aromatization of the corresponding Hantzsch 1,4-dihydropyridines, while this method greatly simplified the synthetic procedures.
For 1, 4 - dihydro pyridine compound to prepare the corresponding pyridine compound (by machine translation)
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Paragraph 0046-0048, (2017/08/19)
The invention discloses a method for the 1, 4 - dihydro pyridine compound to prepare the corresponding pyridine compound. The method of the invention is: will be 1, 4 - dihydro pyridine compound, eosin Y of the four n-butyl ammonium salt, potassium carbonate is added to the organic solvent with the water in the mixed solvent of stirring and mixing, inject the air in visible light irradiation under the conditions of reaction, to be after the reaction, by adding ethyl acetate, respectively water, saturated ammonium chloride washing, removal of inorganic alkali and adjust the system to subacid, in the organic phase by adding a small amount of activated carbon to remove the pigment, then dried with anhydrous sodium sulfate, turns on lathe does, recrystallize and obtain the corresponding pyridine compound. The method of the invention compared with the prior art has to oxygen in air as the oxidizing agent, is cheap and easy to get; to sunlight as the energy source, so that the industrial production more favorable; catalytic amount of the use of non-metal catalyst, reduces the cost of synthesizing, avoiding the noble metal in the accumulation of drug in the synthesis. (by machine translation)
Metal-free-mediated oxidation aromatization of 1,4-dihydropyridines to pyridines using visible light and air
Wei, Xiaojing,Wang, Lin,Jia, Wenliang,Du, Shaofu,Wu, Lizhu,Liu, Qiang
, p. 1245 - 1250 (2015/02/05)
A metal-free and environmentally friendly aerobic aromatization photosensitized by organic dye eosin Y bis(tetrabutyl ammonium salt) (TBA-eosinY) has been developed. With the aid of K2CO3, the aerobic catalytic system converts 1,4-dihydropyridines to their corresponding pyridine derivatives efficiently under visible light irradiation (λ=450 nm) at room temperature.
NaI readily mediated oxidative aromatization of hantzsch 1,4-dihydropyridines with hydrogen peroxide at room temperature: A green procedure
Shahabi,Amrollahi,Jafari
experimental part, p. 1052 - 1057 (2012/02/04)
The oxidative conversion of 1,4-dihydropyridines to give the corresponding pyridine derivatives in excellent yields was easily effected using the catalytic amount of NaI in combination with H2O2 (30%) as a green external oxidant. The
Hydride, hydrogen, proton, and electron affinities of imines and their reaction intermediates in acetonitrile and construction of thermodynamic characteristic graphs (TCGs) of imines as a molecule ID card
Zhu, Xiao-Qing,Liu, Qiao-Yun,Chen, Qiang,Mei, Lian-Rui
scheme or table, p. 789 - 808 (2010/04/29)
(Chemical Equation Presented) A series of 61 imines with various typical structures were synthesized, and the thermodynamic affinities (defined as enthalpy changes or redox potentials in this work) of the imines to abstract hydride anions, hydrogen atoms, and electrons, the thermodynamic affinities of the radical anions of the imines to abstract hydrogen atoms and protons, and the thermodynamic affinities of the hydrogen adducts of the imines to abstract electrons in acetonitrile were determined by using titration calorimetry and electrochemical methods. The pure heterolytic and homolytic dissociation energies of the C=N π-bond in the imines were estimated. The polarity of the C=N double bond in the imines was examined using a linear free-energy relationship. The idea of a thermodynamic characteristic graph (TCG) of imines as an efficient Molecule ID Card was introduced. The TCG can be used to quantitatively diagnose and predict the characteristic chemical properties of imines and their various reaction intermediates as well as the reduction mechanism of the imines. The information disclosed in this work could not only supply a gap of thermodynamics for the chemistry of imines but also strongly promote the fast development of the applications of imines. 2009 American Chemical Society.
