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Artykuły w czasopismach na temat "2-e]pyran-12(13H)-ones"

1

Emel, Pelit. "(±)-CSA Catalyzed Multicomponent Synthesis of Indeno Naphthopyrans and Tetrahydrobenzo[a]xanthen-11-ones Under Ultrasonic Irradiation." Chemical Science International Journal 20, no. 1 (2017): 1–8. https://doi.org/10.9734/CSJI/2017/35380.

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<strong>Aims: </strong>This study was designed to synthesis of Naphthopyrans and xanthenes derivatives in green chemistry approach. <strong>Methodology:</strong> New 13-aryl-indeno[1,2-<em>b</em>]naphtha[1,2-<em>e</em>]pyran-12(13<em>H</em>)-ones and tetrahydrobenzo[<em>a</em>]xanthen-11-ones were obtained by multi-component reaction of 2-naphthol, aromatic aldehydes, indane-1,3-dione or 5,5-dimethylcyclohexane-1,3-dione in the presence of (±)-camphor-10-sulfonic acid (CSA) catalyst under ultrasonic irradiation. <strong>Results:</strong> 13-aryl-indeno[1,2-<em>b</em>]naphtha[1,2-<em>e</em>]pyr
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Wu, Li Qiang, Wei Lin Li, and Fu Lin Yan. "Sulfamic acid-catalyzed synthesis of 13-aryl-indeno[1,2-b]-naphtha[1,2-e]pyran-12(13H)-ones under solvent-free conditions." Journal of Heterocyclic Chemistry 47, no. 5 (2010): 1246–49. http://dx.doi.org/10.1002/jhet.445.

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Wu, Li-Qiang, Li-Min Yang, Xiao Wang, and Fu-Lin Yan. "Silica Chloride Catalysed One-pot Synthesis of 13-Aryl-indeno[1,2-b]naphtha[1,2-e]pyran-12(13H)-ones under Solvent-free Conditions." Journal of the Chinese Chemical Society 57, no. 4A (2010): 738–41. http://dx.doi.org/10.1002/jccs.201000102.

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Wu, Li Qiang, Wei Lin Li, and Fu Lin Yan. "ChemInform Abstract: Sulfamic Acid-Catalyzed Synthesis of 13-Aryl-indeno[1,2-b]naphtha[1,2-e]pyran-12(13H)-ones under Solvent-Free Conditions." ChemInform 42, no. 5 (2011): no. http://dx.doi.org/10.1002/chin.201105139.

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Le, Van-Tuyen, Samuel Bertrand, Thibaut Robiou du Pont, et al. "Untargeted Metabolomics Approach for the Discovery of Environment-Related Pyran-2-Ones Chemodiversity in a Marine-Sourced Penicillium restrictum." Marine Drugs 19, no. 7 (2021): 378. http://dx.doi.org/10.3390/md19070378.

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Very little is known about chemical interactions between fungi and their mollusc host within marine environments. Here, we investigated the metabolome of a Penicillium restrictum MMS417 strain isolated from the blue mussel Mytilus edulis collected on the Loire estuary, France. Following the OSMAC approach with the use of 14 culture media, the effect of salinity and of a mussel-derived medium on the metabolic expression were analysed using HPLC-UV/DAD-HRMS/MS. An untargeted metabolomics study was performed using principal component analysis (PCA), orthogonal projection to latent structure discr
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Ghasemzadeh, Mohammad Ali, Mina Azimi-Nasrabad, Seyed Mostafa Hasan-Nasrollahi, and Mohammad Hossein Abdollahi-Basir. "Co3O4@SiO2 Nanocomposite as a Powerful and Reusable Catalyst for the Synthesis of 13-Aryl-indeno[1,2-b]naphtha[1,2-e]pyran-12(13H)-ones." Iranian Journal of Science and Technology, Transactions A: Science 42, no. 3 (2016): 1199–207. http://dx.doi.org/10.1007/s40995-016-0123-7.

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A., S. A. YOUSSEF, A. KANDEEL K., and M. F. MADKOUR HASSAN. "Reactions of Carbon-Nucleophiles with Acetylenic Esters and Ketones." Journal of Indian Chemical Society Vol. 72, Feb 1995 (1995): 103–5. https://doi.org/10.5281/zenodo.5900950.

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Chemistry Department, Faculty of Science, Ain Shams University, Abbassia, Cairo, Egypt <em>Manuscript received 27 April 1992, revised 29 September 1993, accepted 9 November 1993</em> Cyanoacetanilide (1) reacted with 3-phenyl-1-aryl-prop-2-yn-1-ones (2a-c) in the presence of sodium pellets in dry benzene to give the corresponding 3-cyanopyrid-2-ones (3a-c) and the aminopyrid-2-ones (4a,b). Similarly 1 reacted with methyl 3-arylprop-2-ynoates (2d,e) to give the 5-cyanopyrid-2-ones (7a,b) and the pyran-2-ones (8). On the other hand, 6-chloro-3-cyano-4-methylcoumarin (9) reacted with 2a-c,e to gi
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Ghashang, Majid, Syed Sheik Mansoor, and Krishnamoorthy Aswin. "Poly(4-vinylpyridinium)hydrogen sulfate: A novel and efficient catalyst for the synthesis of 13-aryl-indeno[1,2-b]naphtha[1,2-e]pyran-12(13H)-ones under solvent-free conditions." Chinese Journal of Catalysis 35, no. 1 (2014): 43–48. http://dx.doi.org/10.1016/s1872-2067(12)60707-4.

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K., H. Popat, V. Kachhadia V., S. Nimavat Kiran, and S. Joshi H. "Synthesis of some new cyanopyrans and cyanopyridines and their biological activities." Journal of Indian Chemical Society Vol. 81, Feb 2004 (2004): 157–59. https://doi.org/10.5281/zenodo.5830209.

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Department of Chemistry, Saurashtra University, Rajkot-360 005, India <em>E-mail</em> : drhsjosh i@ yahoo.com&nbsp; &nbsp; &nbsp; <em>Fax</em>: 91-0281-2578512 <em>Manuscript received 31&nbsp;January 2003, revised 12 May 2003, accepted 24 July 2003</em> Chalcones 1-aryl-3-<em>m</em>-chlorophenyl-2-propene-1-ones, 1a-j, underwent Michael addition on renuxing with malononitrile in the presence of pyridine and ammonium acetate in ethanol to give compounds 2-amino-3-cyano-4-(3&#39;-chlorophenyl)-6-(4-phenyl)-pyran, 2a-j and 2-amino-3-cyano-4-(3&#39;-chlorophenyl)-6-(4-phenyl)-pyridine, 3a-j, respe
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Mansoor, Syed Sheik, and Majid Ghashang. "Synthesis of a novel series of 7-hydroxy-10-aryl-10H-indeno[1,2-b]chromen-11-ones, indeno[1,2-b]naphtho[1,2-e]pyran-12(13H)-one, and indeno[1,2-b]naphtho[3,2-e]pyran-5,11,13-trione catalyzed by reusable polyvinylpolypyrrolidone-supported triflic acid." Research on Chemical Intermediates 41, no. 11 (2015): 9085–100. http://dx.doi.org/10.1007/s11164-015-1949-x.

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