Sustainable synthesis of benzopyranderivativescatalyzed by MgO nanoparticles: Spectral, DFT and TEM analysis
暂无分享,去创建一个
M. Chahar | S. Khaturia | Sangeeta | H. Singh | Saloni Sahal
[1] Thuan Van Tran,et al. A critical review on the bio-mediated green synthesis and multiple applications of magnesium oxide nanoparticles. , 2022, Chemosphere.
[2] Qianwen Liu,et al. Research progress on antidiabetic activity of apigenin derivatives , 2022, Medicinal Chemistry Research.
[3] N. Bhatia,et al. Synthesis of benzopyrans and evaluation of cytotoxicity against ER-MCF-7 cell lines , 2022, Journal of Molecular Structure.
[4] Bo Zhang,et al. Transition-metal-free synthesis of pyrimidines from lignin β-O-4 segments via a one-pot multi-component reaction , 2022, Nature Communications.
[5] S. Laphookhieo,et al. Antidiabetic properties of garciniacowone L, a new xanthone with an unusual 5,5,8a-trimethyloctahydro-2H-1-benzopyran moiety, and other xanthones from the twig extract of Garcinia cowa Roxb. ex choisy , 2022, Journal of King Saud University - Science.
[6] S. A. Al Jaouni,et al. Insights into the Antimicrobial, Antioxidant, Anti-SARS-CoV-2 and Cytotoxic Activities of Pistacia lentiscus Bark and Phytochemical Profile; In Silico and In Vitro Study , 2022, Antioxidants.
[7] S. Bhagat,et al. Synthetic Strategies and Pharmacological Activities of Chromene and Its Derivatives: An Overview , 2022, Journal of Molecular Structure.
[8] Rangappa S. Keri,et al. Synthetic and natural coumarins as potent anticonvulsant agents: A review with structure–activity relationship , 2022, Journal of clinical pharmacy and therapeutics.
[9] S. Kim,et al. Procyanidins and Phlobatannins from the Twigs of Rosa multiflora and Their Neuroprotective Activity. , 2022, Journal of natural products.
[10] S. Nahashon,et al. Epigallocatechin-3-Gallate (EGCG): New Therapeutic Perspectives for Neuroprotection, Aging, and Neuroinflammation for the Modern Age , 2022, Biomolecules.
[11] S. Patil. Medicinal significance of novel coumarin analogs: Recent Studies , 2022, Results in Chemistry.
[12] R. Chatterjee,et al. Recent Advances in the Synthesis of Coumarin and Its Derivatives by Using Aryl Propiolates , 2022, ChemistrySelect.
[13] R. Sarala,et al. Efficacy of the commercial plant products acting against influenza-a review , 2021, Future Journal of Pharmaceutical Sciences.
[14] A. S. Kozlenko,et al. Novel polychromogenic fluorine-substituted spiropyrans demonstrating either uni- or bidirectional photochromism as multipurpose molecular switches , 2021, Dyes and Pigments.
[15] B. Staels,et al. Synthesis and biological studies of "Polycerasoidol" and "trans-δ-Tocotrienolic acid" derivatives as PPARα and/or PPARγ agonists. , 2021, Bioorganic & medicinal chemistry.
[16] B. Patil,et al. Chickpea Leaf Exudates: A Highly Efficient Natural Brønsted Acidic Medium for the Synthesis of Pyran-annulated Heterocycles , 2021, Letters in Organic Chemistry.
[17] S. Braga,et al. Redesigning Nature: Ruthenium Flavonoid Complexes with Antitumour, Antimicrobial and Cardioprotective Activities , 2021, Molecules.
[18] Wenbin Lin,et al. Dimensional Reduction of Lewis Acidic Metal-Organic Frameworks for Multicomponent Reactions. , 2021, Journal of the American Chemical Society.
[19] Yunyao Liu,et al. Prenylated coumarins from the fruits of Artocarpus heterophyllus with their potential anti-inflammatory and anti-HIV activities , 2021, Natural product research.
[20] P. Dhar,et al. Highly potent anti-malarial activity of benzopyrano(4,3-b)benzopyran derivatives and in silico interaction analysis with putative target Plasmodium falciparum lactate dehydrogenase , 2021, Journal of biomolecular structure & dynamics.
[21] N. Alarfaj,et al. Biogenic green synthesis of MgO nanoparticles using Saussurea costus biomasses for a comprehensive detection of their antimicrobial, cytotoxicity against MCF-7 breast cancer cells and photocatalysis potentials , 2020, PloS one.
[22] Ebtehal S. Al-Abdullah,et al. Synthesis and Evaluation of New Coumarin Derivatives as Antioxidant, Antimicrobial, and Anti-Inflammatory Agents , 2020, Molecules.
[23] R. Tayebee,et al. A theoretical study on the pure and doped ZnO nanoclusters as effective nanobiosensors for 5‐ fluorouracil anticancer drug adsorption , 2020 .
[24] M. Amini,et al. Ethylene diamine grafted nanoporous UiO‐66 as an efficient basic catalyst in the multi‐component synthesis of 2‐aminithiophenes , 2018 .
[25] F. Shirini,et al. Preparation of a new DABCO-based ionic liquid and investigation on its application in the synthesis of benzimidazoquinazolinone and pyrimido[4,5-b]-quinoline derivatives , 2017 .
[26] S. M. Sajjadi,et al. Novel type of SO3H–functionalized nano-titanium dioxide as a highly efficient and recyclable heterogeneous nanocatalyst for the synthesis of tetrahydrobenzo[b]pyrans , 2017 .
[27] S. Salehzadeh,et al. Multi‐wall carbon nanotube supported Co (II) Schiff base complex: an efficient and highly reusable catalyst for synthesis of 1‐amidoalkyl‐2‐naphthol and tetrahydrobenzo[b]pyran derivatives , 2017 .
[28] Mosadegh Keshavarz. Ion-pair immobilization of l-prolinate anion onto cationic polymer support and a study of its catalytic activity for one-pot synthesis of spiroindolones , 2016, Journal of the Iranian Chemical Society.
[29] J. Safari,et al. Green chemistry-mediated synthesis of benzil by using nano-MgO , 2015 .
[30] F. Dehghani,et al. A green one-pot three-component synthesis of tetrahydrobenzo[b]pyran and 3,4-dihydropyrano[c]chromene derivatives using a Fe3O4@SiO2–imid–PMAn magnetic nanocatalyst under ultrasonic irradiation or reflux conditions , 2015 .
[31] K. Amani,et al. Synthesis, characterization and heterogeneous catalytic activity of diamine-modified silica-coated magnetite-polyoxometalate nanoparticles as a novel magnetically-recoverable nanocatalyst , 2014 .
[32] Eelco Ruijter,et al. Multicomponent reactions: advanced tools for sustainable organic synthesis , 2014 .
[33] M. Abdollahi-Alibeik,et al. Synthesis of 4H-benzo[b]pyrans in the presence of sulfated MCM-41 nanoparticles as efficient and reusable solid acid catalyst , 2013, Reaction Kinetics, Mechanisms and Catalysis.
[34] S. Manorama,et al. Chapter 6:Nanoscale Oxides in Catalysis , 2012 .
[35] K. Satyanarayana,et al. Recyclable ZnO nano particles: Economical and green catalyst for the synthesis of A3 coupling of propargylamines under solvent free conditions , 2012 .
[36] H. Mehrabi,et al. CuO nanoparticles: An efficient and recyclable nanocatalyst for the rapid and green synthesis of 3,4-dihydropyrano[c]chromenes , 2011 .
[37] S. Majedi,et al. Sodium selenate catalyzed simple and efficient synthesis of tetrahydro benzo[b]pyran derivatives , 2008 .
[38] R. Bhosale,et al. Molecular Iodine: An Efficient Catalyst for the Synthesis of Tetrahydrobenzo[b]pyrans , 2007 .
[39] S. Balalaie,et al. Tetra-methyl ammonium hydroxide: An efficient and versatile catalyst for the one-pot synthesis of tetrahydrobenzo[b]pyran derivatives in aqueous media , 2007 .
[40] P. Bhuyan,et al. Sodium bromide catalysed one-pot synthesis of tetrahydrobenzo[b]pyrans via a three-component cyclocondensation under microwave irradiation and solvent free conditions , 2004 .
[41] S. Yin,et al. Magnesia–Carbon Nanotubes (MgO–CNTs) Nanocomposite: Novel Support of Ru Catalyst for the Generation of COx-Free Hydrogen from Ammonia , 2004 .
[42] A. Bell. The Impact of Nanoscience on Heterogeneous Catalysis , 2003, Science.
[43] H. Singh,et al. Design, Spectroscopic Characterization and Theoretical Studies of Organotin(IV) and Organosilicon(IV) Complexes with Schiff Base Ligands Derived from Amino Acids , 2020 .
[44] H. Tian,et al. Rare earth perfluorooctanoate [RE(PFO)3] catalyzed one-pot synthesis of benzopyran derivatives , 2006 .