Costa, Roberta L. da’s team published research in Quimica Nova in 39 | CAS: 52818-63-0

Quimica Nova published new progress about 52818-63-0. 52818-63-0 belongs to ethers-buliding-blocks, auxiliary class Pyridine,Amine,Benzene,Ether, name is N-(4-Methoxybenzyl)pyridin-2-amine, and the molecular formula is C13H14N2O, HPLC of Formula: 52818-63-0.

Costa, Roberta L. da published the artcileSynthesis of phenanthridinone derivatives by direct arylation. Characterization of the absorption and emission spectra for representative examples, HPLC of Formula: 52818-63-0, the publication is Quimica Nova (2016), 39(3), 310-319, database is CAplus.

Phenanthridinones were prepared by reductive amination of anilines or pyridinamines, benzoylation, ortho-iodination and direct arylation. The phenanthridinone heterocyclic system has attracted considerable attention in recent years due to the diverse array of phys., chem. and pharmacol. properties demonstrated by natural and synthetic derivatives As a consequence there has been considerable development of synthetic methodol. for the synthesis of this and related heterocyclic ring systems. The synthetic literature is discussed and is compared with a direct arylation methodol. for the intramol. cyclization of tertiary (2-iodo)benzoylamides to generate the biaryl bond of these compounds The efficient methodol. allowed the synthesis of a number of previously unknown phenanthridinone products. The photoluminescent properties of representative examples were characterized and it is proposed that the previously unknown compound 1s reveals dual fluorescence in a manner similar to the known compound 1r.

Quimica Nova published new progress about 52818-63-0. 52818-63-0 belongs to ethers-buliding-blocks, auxiliary class Pyridine,Amine,Benzene,Ether, name is N-(4-Methoxybenzyl)pyridin-2-amine, and the molecular formula is C13H14N2O, HPLC of Formula: 52818-63-0.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem

Vellakkaran, Mari’s team published research in ACS Catalysis in 7 | CAS: 52818-63-0

ACS Catalysis published new progress about 52818-63-0. 52818-63-0 belongs to ethers-buliding-blocks, auxiliary class Pyridine,Amine,Benzene,Ether, name is N-(4-Methoxybenzyl)pyridin-2-amine, and the molecular formula is C18H35NO, Recommanded Product: N-(4-Methoxybenzyl)pyridin-2-amine.

Vellakkaran, Mari published the artcileAn Efficient and Selective Nickel-Catalyzed Direct N-Alkylation of Anilines with Alcohols, Recommanded Product: N-(4-Methoxybenzyl)pyridin-2-amine, the publication is ACS Catalysis (2017), 7(12), 8152-8158, database is CAplus.

Herein, we developed an efficient and selective nickel-catalyzed monoalkylation of various primary alcs. with aryl and heteroaryl amines together with diols and amino alc. derivatives Notably, the catalytic protocol consisting of an earth-abundant and non-precious NiBr2/L1 (L1 = 1,10-phenanthroline) system enables the transformations in the presence of hydroxyl, alkene, nitrile, and nitro functionalities. As a highlight, we have demonstrated the alkylation of diamine, intramol. cyclization to N-heterocycles, and functionalization of complex vitamin E, an (±)-α-tocopherol derivative Preliminary mechanistic studies revealed the participation of a benzylic C-H bond in the rate-determining step.

ACS Catalysis published new progress about 52818-63-0. 52818-63-0 belongs to ethers-buliding-blocks, auxiliary class Pyridine,Amine,Benzene,Ether, name is N-(4-Methoxybenzyl)pyridin-2-amine, and the molecular formula is C18H35NO, Recommanded Product: N-(4-Methoxybenzyl)pyridin-2-amine.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem

Daw, Prosenjit’s team published research in Organometallics in 31 | CAS: 16332-06-2

Organometallics published new progress about 16332-06-2. 16332-06-2 belongs to ethers-buliding-blocks, auxiliary class Amine,Aliphatic hydrocarbon chain,Amide,Ether, name is 2-Methoxyacetamide, and the molecular formula is C3H7NO2, Application In Synthesis of 16332-06-2.

Daw, Prosenjit published the artcileBifunctional Water Activation for Catalytic Hydration of Organonitriles, Application In Synthesis of 16332-06-2, the publication is Organometallics (2012), 31(9), 3790-3797, database is CAplus.

Treatment of [Rh(COD)(μ-Cl)]2 with excess tBuOK and subsequent addition of 2 equiv of PIN·HBr in THF afforded [Rh(COD)(κC2-PIN)Br] (1) (PIN = 1-isopropyl-3-(5,7-dimethyl-1,8-naphthyrid-2-yl)imidazol-2-ylidene, COD = 1,5-cyclooctadiene). The x-ray structure of 1 confirms ligand coordination to Rh(COD)Br through the carbene C featuring an unbound naphthyridine. Compound 1 is an excellent catalyst for the hydration of a wide variety of organonitriles at ambient temperature, providing the corresponding organoamides. In general, smaller substrates gave higher yields compared with sterically bulky nitriles. A turnover frequency of 20,000 h-1 was achieved for the acrylonitrile. A similar Rh(I) catalyst without the naphthyridine appendage turned out to be inactive. DFT studies are undertaken to gain insight on the hydration mechanism. A 1:1 catalyst-H2O adduct was identified, which indicates that the naphthyridine group steers the catalytically relevant H2O mol. to the active metal site via double H-bonding interactions, providing significant entropic advantage to the hydration process. The calculated transition state (TS) reveals multicomponent cooperativity involving proton movement from the H2O to the naphthyridine N and a complementary interaction between the hydroxide and the nitrile C. Bifunctional H2O activation and cooperative proton migration are recognized as the key steps in the catalytic cycle.

Organometallics published new progress about 16332-06-2. 16332-06-2 belongs to ethers-buliding-blocks, auxiliary class Amine,Aliphatic hydrocarbon chain,Amide,Ether, name is 2-Methoxyacetamide, and the molecular formula is C3H7NO2, Application In Synthesis of 16332-06-2.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem

Salami, Sodeeq Aderotimi’s team published research in Molecules in 27 | CAS: 6850-57-3

Molecules published new progress about 6850-57-3. 6850-57-3 belongs to ethers-buliding-blocks, auxiliary class Amine,Benzene,Ether, name is (2-Methoxyphenyl)methanamine, and the molecular formula is C8H11NO, Related Products of ethers-buliding-blocks.

Salami, Sodeeq Aderotimi published the artcileCatalytic Performance of Immobilized Sulfuric Acid on Silica Gel for N-Formylation of Amines with Triethyl Orthoformate, Related Products of ethers-buliding-blocks, the publication is Molecules (2022), 27(13), 4213, database is CAplus and MEDLINE.

In the search for convenient, green, and practical catalytic methods for the current interest in organic synthesis, a simple, green, and highly efficient protocol for N-formylation of various amines was carried out in the presence of immobilized sulfuric acid on silica gel (H2SO4-SiO2). All reactions were performed in refluxing tri-Et orthoformate (65 °C). The product formamides were obtained with high-to-excellent yields within 4 min to 2 h. The current approach is advantageous, due to its short reaction time and high yields. The catalyst is recyclable with no significant loss in catalytic efficiency.

Molecules published new progress about 6850-57-3. 6850-57-3 belongs to ethers-buliding-blocks, auxiliary class Amine,Benzene,Ether, name is (2-Methoxyphenyl)methanamine, and the molecular formula is C8H11NO, Related Products of ethers-buliding-blocks.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem

Magiera-Mularz, Katarzyna’s team published research in Angewandte Chemie, International Edition in 56 | CAS: 77128-73-5

Angewandte Chemie, International Edition published new progress about 77128-73-5. 77128-73-5 belongs to ethers-buliding-blocks, auxiliary class Inhibitor, name is (S)-2-((((9H-Fluoren-9-yl)methoxy)carbonyl)(methyl)amino)-3-phenylpropanoic acid, and the molecular formula is C25H23NO4, Application of (S)-2-((((9H-Fluoren-9-yl)methoxy)carbonyl)(methyl)amino)-3-phenylpropanoic acid.

Magiera-Mularz, Katarzyna published the artcileBioactive Macrocyclic Inhibitors of the PD-1/PD-L1 Immune Checkpoint, Application of (S)-2-((((9H-Fluoren-9-yl)methoxy)carbonyl)(methyl)amino)-3-phenylpropanoic acid, the publication is Angewandte Chemie, International Edition (2017), 56(44), 13732-13735, database is CAplus and MEDLINE.

Blockade of the immunoinhibitory PD-1/PD-L1 pathway using monoclonal antibodies has shown impressive results with durable clin. antitumor responses. Anti-PD-1 and anti-PD-L1 antibodies have now been approved for the treatment of a number of tumor types, whereas the development of small mols. targeting immune checkpoints lags far behind. We characterized two classes of macrocyclic-peptide inhibitors directed at the PD-1/PD-L1 pathway. We show that these macrocyclic compounds act by directly binding to PD-L1 and that they are capable of antagonizing PD-L1 signaling and, similarly to antibodies, can restore the function of T-cells. We also provide the crystal structures of two of these small-mol. inhibitors bound to PD-L1. The structures provide a rationale for the checkpoint inhibition by these small mols., and a description of their small mol./PD-L1 interfaces provides a blueprint for the design of small-mol. inhibitors of the PD-1/PD-L1 pathway.

Angewandte Chemie, International Edition published new progress about 77128-73-5. 77128-73-5 belongs to ethers-buliding-blocks, auxiliary class Inhibitor, name is (S)-2-((((9H-Fluoren-9-yl)methoxy)carbonyl)(methyl)amino)-3-phenylpropanoic acid, and the molecular formula is C25H23NO4, Application of (S)-2-((((9H-Fluoren-9-yl)methoxy)carbonyl)(methyl)amino)-3-phenylpropanoic acid.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem

Vorobyova, Victoria’s team published research in Waste and Biomass Valorization in 13 | CAS: 134-96-3

Waste and Biomass Valorization published new progress about 134-96-3. 134-96-3 belongs to ethers-buliding-blocks, auxiliary class Immunology/Inflammation,COX,Natural product, name is 4-Hydroxy-3,5-dimethoxybenzaldehyde, and the molecular formula is C6H13NO2, Application In Synthesis of 134-96-3.

Vorobyova, Victoria published the artcilePotential of Tomato Pomace Extract as a Multifunction Inhibitor Corrosion of Mild Steel, Application In Synthesis of 134-96-3, the publication is Waste and Biomass Valorization (2022), 13(7), 3309-3333, database is CAplus.

The aim of this paper is to investigate tomato pomace extract (TPE) as a multifunctional ‘green’ vapor phase corrosion inhibitor for prevention from the atm. corrosion of mild steel and as a corrosion inhibitor in neutral media of 0.5 M NaCl solution TPE would be an effective inhibitor with the efficiency of around 98% in both corrosive conditions. The chem. profile of the TPE was analyzed using gas chromatog. mass spectrometry (GC-MS) and high-performance liquid chromatog. anal. (HPLC-DAD-MS). The major volatile constituents identified in tomato pomace extract were alcs. (12.5%), fatty acids (23.78%), aldehydes (41.6%), ketones (8.65%), and terpenoids (9.11%). The predominant semi-volatile and high mol. weight chem. components in tomato pomace extract were phenolic acids and flavanols [caffeic acid (2.03 0.3μg/g), chlorogenic acid (37.23 ± 0.80μg/g), gallic acid (10.2 ±0.80μg/g)]. The corrosion protection properties of the TPE as multifunctional corrosion inhibitor were studied using accelerated corrosion tests (weight loss method) and electrochem. methods [polarization curves and linear polarization technique (LPR)]. The mechanism of steel inhibition by TPE formulations was studied with the help of SEM (SEM) and at. force microscopy (AFM) observations. TPE acts as a “pro-inhibitor” of the steel corrosion in neutral solution The anal. confirmed that the growth of inhibitory properties is prolonged and corrosion rate is reduced after 40-48 h of exposure. The inhibition efficiency increases with increasing exposure time and reaches 98% after 48 h. Quantum-chem. calculations were used to predict the adsorption/inhibition properties of some of the main compounds of the extract and compounds formed as a result of chem. conversion. This work to contributes interpretation/explanation and understanding of the mechanism of action of green corrosion inhibitors in neutral solution

Waste and Biomass Valorization published new progress about 134-96-3. 134-96-3 belongs to ethers-buliding-blocks, auxiliary class Immunology/Inflammation,COX,Natural product, name is 4-Hydroxy-3,5-dimethoxybenzaldehyde, and the molecular formula is C6H13NO2, Application In Synthesis of 134-96-3.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem

Vorobyova, Viktoria’s team published research in Chemistry Africa in 5 | CAS: 134-96-3

Chemistry Africa published new progress about 134-96-3. 134-96-3 belongs to ethers-buliding-blocks, auxiliary class Immunology/Inflammation,COX,Natural product, name is 4-Hydroxy-3,5-dimethoxybenzaldehyde, and the molecular formula is C10H11NO4, Product Details of C9H10O4.

Vorobyova, Viktoria published the artcileA New Combination Inhibitor Based on Tomato Pomace Extract and Organosilane for Enhanced Anticorrosion Performance of Steel, Product Details of C9H10O4, the publication is Chemistry Africa (2022), 5(4), 997-1014, database is CAplus.

The study aims to assess the effect of extract based inhibiting mixture, i.e., tomato pomace and organosilanes (Vinyltrimethoxysilane (VS)) against corrosion of steel in atm. environment. Such compositions can be used as polymer-type corrosion inhibitors for steel. The developed blend VCI based on tomato pomace extract (TPE) and organosilane provide a long-term protection from corrosion processes under the model conditions of carbon steel. The results show that the protection efficiency of the film reaches 96.97%. The tomato pomace extract chem. composition was analyzed by Head Space-Solid Phase Micro Extraction-Gas Chromatog.-Mass Spectrometry (HS-SPME-GC-MS). The major volatile compounds ot the TPE include alcs., esters, aldehydes, ketones and terpene compounds as described by panelists of HS-SPME-GC-MS. Electrochem. studies reveal decreased corrosion current densities from 4.29 x 10-4 to 0.65 x 10-4 A cm-2 and increased polarization resistance under the conditions of periodic moisture condensation. FT-IR absorption peak obtained at 954, 1142, 1230 cm-1 revealed the formation of Fe-O-Si, Si-O-Si and Si-O-C bonds. The protective film consesed of silane and extract offered the highest corrosion resistance since the corrosion protective barrier minimized the oxygen access and prevented corrosion of mild steel to a greater extent where the EDX anal. showed a high intense signal of Si and C. The mixture of phytochem. extract and organosilane were incorporated in a paint coating. The addition of additive increases the inhibitory properties of the final coating while keeping the barrier properties of the coating.

Chemistry Africa published new progress about 134-96-3. 134-96-3 belongs to ethers-buliding-blocks, auxiliary class Immunology/Inflammation,COX,Natural product, name is 4-Hydroxy-3,5-dimethoxybenzaldehyde, and the molecular formula is C10H11NO4, Product Details of C9H10O4.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem

Guan, Qingqing’s team published research in Applied Energy in 164 | CAS: 16332-06-2

Applied Energy published new progress about 16332-06-2. 16332-06-2 belongs to ethers-buliding-blocks, auxiliary class Amine,Aliphatic hydrocarbon chain,Amide,Ether, name is 2-Methoxyacetamide, and the molecular formula is C3H7NO2, Quality Control of 16332-06-2.

Guan, Qingqing published the artcileBiodiesel from transesterification at low temperature by AlCl3 catalysis in ethanol and carbon dioxide as cosolvent: Process, mechanism and application, Quality Control of 16332-06-2, the publication is Applied Energy (2016), 380-386, database is CAplus.

Finding a more efficient method for the transesterification of triglycerides to biodiesel fuel (BD) is important in today’s world. In this study, transesterification of trilaurin was carried out in a solution containing 4 wt% of the Lewis acid AlCl3 dissolved in a cosolvent of ethanol and 5 MPa CO2. A conversion rate of over 90% was achieved within 1 h at the low temperature of 180°C. The process indicates a co-catalytic effect of the Lewis acid and CO2. We postulate several key steps for the mechanism. First, the CO2-ethanol mixture enhances the hydrogen bonding, increasing the concentration of C2H5O·. Second AlCl3 attacks the oxygen of C-O-C to weaken the bonds to form carbonyl carbon OR1, which is then easily attacked by C2H5O· to give the transesterified product (C2H4COOR1). Third, AlCl3 is finally replaced by H to form glycerin (GL) and intermediates, such as unmethyl esterified compounds (uME). AlCl3 was used as a flocculant and catalyst for converting waste cooking oil (WCO) to BD. The process achieved 97% free fatty acid (FFA) conversion at 120 °C in 90 min, making it one of the most efficient systems available for WCO recovery. AlCl3 was also successfully applied to microalgae, signaling the potential for a process that combines harvesting, lipid extraction, and transesterification, leading to fully integrated, microalgae-based BD production

Applied Energy published new progress about 16332-06-2. 16332-06-2 belongs to ethers-buliding-blocks, auxiliary class Amine,Aliphatic hydrocarbon chain,Amide,Ether, name is 2-Methoxyacetamide, and the molecular formula is C3H7NO2, Quality Control of 16332-06-2.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem

Nakib, Rifka’s team published research in Microchemical Journal in 174 | CAS: 91-16-7

Microchemical Journal published new progress about 91-16-7. 91-16-7 belongs to ethers-buliding-blocks, auxiliary class Benzene,Ether,Inhibitor,Inhibitor,Inhibitor, name is 1,2-Dimethoxybenzene, and the molecular formula is C8H10O2, Application In Synthesis of 91-16-7.

Nakib, Rifka published the artcileRetama sphaerocarpa, Atractylis serratuloides and Eruca sativa honeys from Algeria: Pollen dominance and volatile profiling (HS-SPME/GC-MS), Application In Synthesis of 91-16-7, the publication is Microchemical Journal (2022), 107088, database is CAplus.

The volatile fraction of three monofloral honey types produced in arid and semiarid areas of Algeria was studied to establish a link between their chem. composition and their botanical origin. Palynol. anal. was performed to confirm the main botanical origin. Volatile extraction using HS-SPME coupled to GC-MS revealed exclusive components for each type: 1,6,10-dodecatrien-3-ol,3,7,11-trimethyl-, (E); 1,6-octadien-3-ol,3,7- dimethyl; phenol, 2-methoxy and 2-naphtalene methanol, decahydro-α,α,4a- trimethyl-8-methylene-, [2R-(2α,4aα,8a,8aβ)] for Atractylis honey, lilac aldehyde and lilac aldehyde D for Retama honey, and di-Me trisulfide for Eruca. The PCA anal. made it possible to correlate some volatile compounds with the most important pollen types, and to evaluate the authenticity related to the geog. and botanical origin of the honey.

Microchemical Journal published new progress about 91-16-7. 91-16-7 belongs to ethers-buliding-blocks, auxiliary class Benzene,Ether,Inhibitor,Inhibitor,Inhibitor, name is 1,2-Dimethoxybenzene, and the molecular formula is C8H10O2, Application In Synthesis of 91-16-7.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem

Panigrahi, Ahwan’s team published research in European Journal of Organic Chemistry in 2021 | CAS: 52818-63-0

European Journal of Organic Chemistry published new progress about 52818-63-0. 52818-63-0 belongs to ethers-buliding-blocks, auxiliary class Pyridine,Amine,Benzene,Ether, name is N-(4-Methoxybenzyl)pyridin-2-amine, and the molecular formula is C13H14N2O, Application of N-(4-Methoxybenzyl)pyridin-2-amine.

Panigrahi, Ahwan published the artcileZnBr2 Mediated C-N Bond Formation using Cinnamyl Alcohol and 2-Amino Pyridines, Application of N-(4-Methoxybenzyl)pyridin-2-amine, the publication is European Journal of Organic Chemistry (2021), 2021(21), 3054-3058, database is CAplus.

A simple method for C-N bond formation is disclosed by using cinnamyl alcs. and 2-amino pyridine derivatives in the presence of stoichiometric amount of zinc bromide. This reaction works with a wide range of substrates, and is compatible with primary, secondary, and homoallylic alcs. To the best of our knowledge, this is the first report for C-N bond formation using cinnamyl alc. and 2-amino pyridines using zinc bromide as a Lewis acid.

European Journal of Organic Chemistry published new progress about 52818-63-0. 52818-63-0 belongs to ethers-buliding-blocks, auxiliary class Pyridine,Amine,Benzene,Ether, name is N-(4-Methoxybenzyl)pyridin-2-amine, and the molecular formula is C13H14N2O, Application of N-(4-Methoxybenzyl)pyridin-2-amine.

Referemce:
https://en.wikipedia.org/wiki/Ether,
Ether | (C2H5)2O – PubChem