Catalyst-free green synthesis of tetrahydro-benzo[b]pyrans in magnetized water: experimental aspects and molecular dynamics simulation
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M. Bakherad | Ali Keivanloo | F. Moosavi | R. Doosti | Mahsa Armaghan | Elmira Moradian | M. Armaghan
[1] M. Housaindokht,et al. Magnetic field effect on the structural properties of a peptide model: Molecular dynamics simulation study , 2018, Journal of Molecular Structure.
[2] M. Bakherad,et al. Metal- and catalyst-free, one-pot, three-component synthesis of propargylamines in magnetized water: experimental aspects and molecular dynamics simulation , 2018 .
[3] F. Bamoharram,et al. Effect of Magnetized Ethanol on the Shape Evolution of Zinc Oxide from Nanoparticles to Microrods: Experimental and Molecular Dynamic Simulation Study , 2018 .
[4] M. Bakherad,et al. Rapid, green, and catalyst-free one-pot three-component syntheses of 5-substituted 1H-tetrazoles in magnetized water , 2017, Journal of the Iranian Chemical Society.
[5] M. Bakherad,et al. A New, Simple, Catalyst-free Method for the Synthesis of Pyrazolopyranopyrimidines in Magnetized Water , 2017 .
[6] M. Housaindokht,et al. A new method for preparing mono-dispersed nanoparticles using magnetized water , 2017 .
[7] M. Bakherad,et al. A catalyst-free and green method for synthesis of 9-substituted-9H-diuracilopyrans in magnetized water: experimental aspects and molecular dynamics simulation , 2017, Research on Chemical Intermediates.
[8] M. Bakherad,et al. Using magnetized water as a solvent for a green, catalyst-free, and efficient protocol for the synthesis of pyrano[2,3-c]pyrazoles and pyrano[4′,3′:5,6]pyrazolo [2,3-d]pyrimidines , 2017, Research on Chemical Intermediates.
[9] H. Azizi-Toupkanloo,et al. Magnetized property effect of a non-aqueous solvent upon complex formation between kryptofix 22DD with lanthanum(III) cation: experimental aspects and molecular dynamics simulation , 2016 .
[10] F. Gholami,et al. Magnetic core–shell titanium dioxide nanoparticles as an efficient catalyst for domino Knoevenagel–Michael-cyclocondensation reaction of malononitrile, various aldehydes and dimedone , 2015 .
[11] A. Pourjavadi,et al. Cross-linked poly(dimethylaminoethyl acrylamide) coated magnetic nanoparticles: a high loaded, retrievable, and stable basic catalyst for the synthesis of benzopyranes in water , 2014 .
[12] G. Kaupp,et al. Ball milling for the quantitative and specific solvent-free Knoevenagel condensation + Michael addition cascade in the synthesis of various 2-amino-4-aryl-3-cyano-4H-chromenes without heating , 2014 .
[13] O. Mosin,et al. Basic Concepts of Magnetic Water Treatment , 2014 .
[14] F. Moosavi,et al. Magnetic effects on the solvent properties investigated by molecular dynamics simulation , 2014 .
[15] T. Ponpandian,et al. One-Pot, Catalyst-Free Synthesis of Spirooxindole and 4H-Pyran Derivatives , 2014 .
[16] A. Kiasat,et al. Nano magnetic double-charged diazoniabicyclo[2.2.2]octane dichloride silica hybrid: Synthesis, characterization, and application as an efficient and reusable organic–inorganic hybrid silica with ionic liquid framework for one-pot synthesis of pyran annulated heterocyclic compounds in water , 2013 .
[17] A. Pourjavadi,et al. Water dispersed magnetic nanoparticles (H2O-DMNPs) of γ-Fe2O3 for multicomponent coupling reactions: a green, single-pot technique for the synthesis of tetrahydro-4H-chromenes and hexahydroquinoline carboxylates , 2013 .
[18] M. Doroodmand,et al. Silica-bonded 5-n-propyl-octahydro-pyrimido[1,2-a]azepinium chloride (SB-DBU)Cl as a highly efficient, heterogeneous and recyclable silica-supported ionic liquid catalyst for the synthesis of benzo[b]pyran, bis(benzo[b]pyran) and spiro-pyran derivatives , 2013 .
[19] H. Safaei,et al. Glycerol as a biodegradable and reusable promoting medium for the catalyst-free one-pot three component synthesis of 4H-pyrans , 2012 .
[20] Pengfei Zhang,et al. One-pot synthesis of tetrahydrochromene derivatives catalyzed by lipase , 2011 .
[21] M. Doroodmand,et al. Silica bonded n-propyl-4-aza-1-azoniabicyclo[2.2.2]octane chloride (SB-DABCO): A highly efficient, reusable and new heterogeneous catalyst for the synthesis of 4H-benzo[b]pyran derivatives , 2011 .
[22] R. J. Kalbasi,et al. Synthesis and characterization of poly(4-vinylpyridine)/MCM-48 catalyst for one-pot synthesis of substituted 4H-chromenes , 2011 .
[23] Subhash Banerjee,et al. A green one-pot multicomponent synthesis of 4H-pyrans and polysubstituted aniline derivatives of biological, pharmacological, and optical applications using silica nanoparticles as reusable catalyst , 2011 .
[24] A. Patra,et al. Synthesis of Tetrahydrobenzo[b]Pyran Derivatives Catalysed by Aliquat®336 in Water Under Microwave Irradiation , 2010 .
[25] Yajun Li,et al. Organocatalytic asymmetric tandem Michael addition-hemiacetalization: a route to chiral dihydrocoumarins, chromanes, and 4H-chromenes. , 2010, The Journal of organic chemistry.
[26] J. Beattie,et al. The mechanism of on-water catalysis. , 2010, Chemistry.
[27] Peng Zhang,et al. Lithium Bromide as a Mild, Efficient, and Recyclable Catalyst for the One-Pot Synthesis of Tetrahydro-4H-Chromene Derivatives in Aqueous Media , 2010 .
[28] B. Bandgar,et al. Uncatalyzed Reactions in Aqueous Media: Three-Component, One-Pot, Clean Synthesis of Tetrahydrobenzo[b]pyran Derivatives , 2007 .
[29] Cheng-I Weng,et al. The effect of an external magnetic field on the structure of liquid water using molecular dynamics simulation , 2006 .
[30] D. Maloney,et al. A Stereocontrolled Synthesis of d- trans -Tocotrienoloic Acid , 2005 .
[31] P. Pihko,et al. Proline-catalyzed ketone-aldehyde aldol reactions are accelerated by water , 2004 .
[32] A. Córdova,et al. Direct organocatalytic asymmetric α-hydroxymethylation of ketones and aldehydes , 2004 .
[33] L. Gong,et al. Small peptides catalyze highly enantioselective direct aldol reactions of aldehydes with hydroxyacetone: unprecedented regiocontrol in aqueous media. , 2004, Organic letters.
[34] R. Breslow. Determining the geometries of transition States by use of antihydrophobic additives in water. , 2004, Accounts of chemical research.
[35] D. Triggle. 1,4-Dihydropyridines as Calcium Channel Ligands and Privileged Structures , 2003, Cellular and Molecular Neurobiology.
[36] K. Lee,et al. Isolation of rhododaurichromanic acid B and the anti-HIV principles rhododaurichromanic acid A and rhododaurichromenic acid from Rhododendron dauricum , 2001 .
[37] G. E. Dunaevskii,et al. Study of the Influence of Magnetic Fields on the Properties of Polar Liquids , 2000 .
[38] V. D. Dyachenko,et al. Aliphatic aldehydes in the synthesis of condensed 4-alkyl(cycloalkyl)-2-amino-3-cyano-4H-pyrans , 1999 .
[39] Simon Judd,et al. Magnetically Augmented Water Treatment , 1997 .
[40] Simon Judd,et al. Magnetic treatment of calcium carbonate scale—effect of pH control , 1997 .
[41] R. P. Sawatzky,et al. Rapid onset of calcium carbonate crystallization under the influence of a magnetic field , 1997 .
[42] Ko Higashitani,et al. Magnetic Effects on Zeta Potential and Diffusivity of Nonmagnetic Colloidal Particles , 1995 .
[43] Ko Higashitani,et al. Effects of magnetic fields on stability of nonmagnetic ultrafine colloidal particles , 1992 .