全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
Catalysts  2013 

Facile and Efficient Acetylation of Primary Alcohols and Phenols with Acetic Anhydride Catalyzed by Dried Sodium Bicarbonate

DOI: 10.3390/catal3040954

Keywords: carbonates, bicarbonates, acylation, acetic anhydride

Full-Text   Cite this paper   Add to My Lib

Abstract:

A variety of primary alcohols and phenols were reacted with acetic anhydride at room temperature in the presence of sodium bicarbonate to produce corresponding esters in good to excellent yields. The acetylation of 4-nitrobenzyl alcohol was also carried out using other bicarbonates and carbonates. The reaction in the presence of cesium bicarbonate and lithium carbonate gave 4-nitrobenzyl acetate in excellent yield, while in the presence of Na 2CO 3, K 2CO 3, Cs 2CO 3, or KHCO 3 the yield was in the range of 80%–95%. Calcium carbonate and cobaltous carbonate did not promote the acetylation of 4-ntirobenzyl alcohol using acetic anhydride. The acetylation of 4-nitrobenzyl alcohol was carried out using ethyl acetate, THF, toluene, diethyl ether, dichloromethane and acetonitrile, and gave good yields ranging from 75%–99%. Toluene was the best solvent for the reaction, while diethyl ether was the poorest.

References

[1]  Greene, T.W.; Wuts, P.G.M. Protective Groups in Organic Synthesis, 4th ed. ed.; Wiley Interscience: New York, NY, USA, 2007; pp. 223–238.
[2]  Kocienski, P.J. Protecting Groups; Thieme: New York, NY, USA, 1994.
[3]  Larock, R.C. Comprehensive Organic Transformations; VCH Publishers, Inc.: New York, NY, USA, 1989; p. 980.
[4]  Saravanan, P.; Singh, V.K. An efficient method for acylation reactions. Tetrahedron Lett. 1999, 40, 2611–2614, doi:10.1016/S0040-4039(99)00229-4.
[5]  Chandrasekhar, S.; Ramachander, T.; Takhi, M. Acylation of Alcohols with Acetic Anhydride Catalyzed by TaCl5: Some Implications in Kinetic Resolution. Tetrahedron Lett. 1998, 39, 3263–3266, doi:10.1016/S0040-4039(98)00465-1.
[6]  Damen, E.W.P.; Braamer, L.; Scheeren, H.W. Lanthanide Trifluoromethanesulfonate Catalysed Selective Acylation of 10-Deacetylbaccatin III. Tetrahedron Lett. 1998, 39, 6081–6082, doi:10.1016/S0040-4039(98)01253-2.
[7]  Orita, A.; Mitsutome, A.; Otera, J. Distannoxane-Catalyzed Highly Selective Acylation of Alcohols. J. Org. Chem. 1998, 63, 2420–2421, doi:10.1021/jo9800412.
[8]  Brenton, G.W. Selective Monoacetylation of Unsymmetrical Diols using SiO2 Supported Sodium Hydrogen Sulfate. J. Org. Chem. 1997, 62, 8952–8954, doi:10.1021/jo971367y.
[9]  Orita, A.; Sakamoto, K.; Hamada, Y.; Mitsutome, A.; Otera, J. Mild and Practical Acylation of Alcohols with Esters or Acetic Anhydride Under Distannoxane Catalysis. Tetrahedron 1999, 55, 2899–2910, doi:10.1016/S0040-4020(99)00072-1.
[10]  Karimi, B.; Seradj, H. N-bromosuccinimide (NBS), A Novel and Highly Effective Catalyst for Acetylation of Alcohols Under Mild Reaction Conditions. Synlett 2001, 519–520.
[11]  Iqbal, J.; Srivastava, R.R. Cobalt (II) Chloride Catalyzed Acylation of Alcohols with Acetic Anhydride: Scope and Mechanism. J. Org. Chem. 1992, 57, 2001–2007, doi:10.1021/jo00033a020.
[12]  Li, T.S.; Li, A.X. Montmorillonite clay catalysis. Part 10. K-10 and KSF-Catalysed Acylation of Alcohols, Phenols, Thiols and Amines: Scope and Limitation. J. Chem. Soc. Perkin Trans. 1998, 1, 1913–1917.
[13]  Ballini, R.; Bosica, G.; Carloni, L.; Maggi, R.; Sartori, G. Zeolite HSZ-360 as a New Reusable Catalyst for the Direct Acetylation of Alcohols and Phenols Under Solventless Conditions. Tetrahedron Lett. 1998, 39, 6049–6052, doi:10.1016/S0040-4039(98)01244-1.
[14]  Bhaskar, P.M.; Loganathan, D. Per-O-acetylation of Sugars Catalysed by Montmorillonite K-10. Tetrahedron Lett. 1998, 39, 2215–2218.
[15]  Hofle, G.; Stelich, V.; Vobruggen, H. 4-Dialkylaminopyridines as Highly Active Acylation Catalysts. Angew Chem. Int. Ed. Engl. 1987, 17, 569–583.
[16]  Scriven, E.F.V. 4-Dialkylaminopyridines: Super Acylation and Alkylation Catalysts. Chem. Soc. Rev. 1983, 12, 129–161, doi:10.1039/cs9831200129.
[17]  Vedejs, E.; Diver, S.T. Tributylphosphine: A remarkable Acylation Catalyst. J. Am. Chem. Soc. 1993, 115, 3358–3359, doi:10.1021/ja00061a056.
[18]  Vedejs, E.; Bennett, N.S.; Conn, L.M.; Diver, S.T.; Gingras, M.; Lin, S.; Oliver, P.A.; Peterson, M.J. Tributylphosphine-catalyzed Acylations of Alcohols: Scope and Related Reactions. J. Org. Chem. 1993, 58, 7286–7288, doi:10.1021/jo00077a064.
[19]  Chauhan, K.K.; Frost, C.G.; Love, I.; Waite, D. Indium triflate: An Efficient Catalyst for the Friedel-Crafts Acylation of Aromatics. Synlett 1999, 1743–1744, doi:10.1055/s-1999-2941.
[20]  Orita, A.; Tanahashi, C.; Kakuda, A.; Otera, J. Highly Efficient and Versatile Acylation of Alcohols with Bi(OTf)3 as Catalyst. Angrew. Chem. Int. Ed. 2000, 39, 2877–2879.
[21]  Moghadam, M.; Tangestaninejad, S.; Mirkhani, V.; Mohammadpoor-Baltork, I.; Babghanbari, M.; Zarea, L. Zirconyl triflate: A New, Highly Efficient and Reusable Catalyst for Acetylation and Benzoylation of Alcohols, Phenols, Amines and Thiols with Acetic and Benzoic Anhydrides. J. Iran. Chem. Soc. 2009, 6, 523–532, doi:10.1007/BF03246531.
[22]  Iranpoor, N.; Shekarrize, M. Catalytic Esterification of Alcohols, Carboxylic Acids and Transesterification Reactions with Cerium(IV) Triflate. Bull. Chem. Soc. Jpn. 1999, 72, 455–458, doi:10.1246/bcsj.72.455.
[23]  Alleti, R.; Perambuduru, M.; Samantha, S.; Prakash, V.; Reddy, V.P. Gadolinium Triflate: an Efficient and Convenient Catalyst for Acetylation of Alcohols and Amines. J. Mol. Catal. A Chem. 2005, 226, 57–59, doi:10.1016/j.molcata.2004.09.024.
[24]  Ishihara, K.; Kubota, M.; Kurihara, H.; Yamamoto, H. Scandium Trifluoromethanesulfonate as an Extremely Active Acylation Catalyst. J. Am. Chem. Soc. 1995, 117, 6639–6639.
[25]  Ishihara, K.; Kubota, M.; Kurihara, H.; Yamamoto, H. Scandium Trifluoromethanesulfonate as an Extremely Active Lewis Acid Catalyst in Acylation of Alcohols with acid Anhydrides and Mixed Anhydrides. J. Org. Chem. 1996, 61, 4560–4567, doi:10.1021/jo952237x.
[26]  Ishihara, K.; Kubota, M.; Yamamoto, H. A New Scandium Complex as an Extremely Active Acylation Catalyst. Synlett 1996, 265–266, doi:10.1055/s-1996-5376.
[27]  Barrett, A.G.M.; Braddock, D.C. Scandium(III) or Lanthanide(III) Triflates as Recyclable Catalysts for the Direct Acetylation of Alcohols with Acetic Acid. Chem. Commun. 1997, 351–352, doi:10.1039/a606484a.
[28]  Zhao, H.; Pendri, A.; Greenwald, R.B. General Procedure for Acylation of 3 Degrees Alcohols: Scandium Triflate/DMAP Reagent. J. Org. Chem. 1998, 63, 7559–7562, doi:10.1021/jo981161c.
[29]  Procopiou, P.A.; Baugh, S.P.D.; Flack, S.S.; Inglis, G.G.A. An Extremely Powerful Acylation Reaction of Alcohols with Acid Anhydrides Catalyzed by Trimethylsilyl Trifluoromethanesulfonate. J. Org. Chem. 1998, 63, 2342–2347, doi:10.1021/jo980011z.
[30]  Procopiou, P.A.; Baugh, S.P.D.; Flack, S.S.; Inglis, G.G.A. An Extremely Fast and Efficient Acylation Reaction of Alcohols with acid Anhydrides in the Presence of Trimethylsilyl Trifluoromethanesulfonate as Catalyst. J. Chem. Soc. Chem. Commun. 1996, 2625–2626.
[31]  Miyashita, M.; Shiina, I.; Miyoshi, S.; Mukaiyama, T. A New and Efficient Esterification Reaction via Mixed Anhydrides by the Promotion of a Catalytic Amount of Lewis Acid. Bull. Chem. Soc. Jpn. 1993, 66, 1516–1527, doi:10.1246/bcsj.66.1516.
[32]  Nakae, Y.; Kusaki, I.; Sato, T. Lithium Perchlorate Catalyzed Acetylation of Alcohols Under Mild Reaction Conditions. Synlett 2001, 1584–1586, doi:10.1055/s-2001-17483.
[33]  Bartoli, G.; Bosco, M.; Dalpozzo, R.; Marcantoni, E.; Massaccesi, M.; Rinaldi, S.; Sambri, L. Mg(ClO4)(2) as a Powerful Catalyst for the Acylation of Alcohols Under Solvent-Free Conditions. Synlett 2003, 39–42.
[34]  Phukan, P. Iodine as an Extremely Powerful Catalyst for the Acetylation of Alcohols Under Solvent-free conditions. Tetrahedron Lett. 2004, 45, 4785–4787, doi:10.1016/j.tetlet.2004.04.076.
[35]  Nishiguchi, T.; Taya, H. Facile Acylation of Alcohols Using Esters and Silica Gel-Supported Metallic Sulphates and Hydrogen Sulphates. J. Chem Soc. Perkin Trans. 1990, 1, 172–173, doi:10.1039/p19900000172.
[36]  Ambika; Singh, P.P.; Chauhan, S.M.S. Chemoselective Esterification of Phenolic Acids in the Presence of Sodium Bicarbonate in Ionic Liquids. Synth. Commun. 2008, 38, 928–936, doi:10.1080/00397910701845480.
[37]  Mallesha, N.; Rao, S.P.; Suhas, R.; Gowda, D.C. A Green Method for Selective Acetylation of Primary Alcohols Using Ethyl acetate and Solid Potassium Carbonate. J. Chem Res. 2011, 35, 536–539, doi:10.3184/174751911X13155057300536.
[38]  Yan, X.; Xueqiang, Z. Significant Heterogeneous Carbonate Salt Catalyzed Acetylation of Alcohols via a Transesterification Process with Carbonate Salt-Activated Alcohol 1H NMR Evidence. Chin. J. Chem. 2011, 29, 1143–1148, doi:10.1002/cjoc.201190214.
[39]  Zarei, A.; Hajipour, A.R.; Khazdooz, L. P2O5/Al2O3 As an Efficient Heterogeneous Catalyst for the Acetylation of Alcohols, Phenols, Thiols, and Amines Under Solvent-Free Conditions. Synth. Commun. 2011, 41, 1772–1785, doi:10.1080/00397911.2010.492197.
[40]  Das, R.; Chakraborty, D. Silver Triflate catalyzed Acetylation of Alcohols, Thiols, and Amines. Synthesis 2011, 10, 1621–1625, doi:10.1055/s-0030-1259999.
[41]  Xiao, Z.-P.; Fang, R.-Q.; Lei, S.; Ding, H.; Xu, C.; Zhu, H.-L. Synthesis, Crystal Structure, and Growth Inhibiton of Human Heptoma Cell (HepG2) of Polyphenolic Compound Based on Gallates. Can. J. Chem. 2007, 85, 951–957, doi:10.1139/v07-107.
[42]  Carrasco, H.A.; Espinoza, L.C.; Cardile, V.; Gallardo, C.; Cardona, W.; Lombardo, L.; Catalán, K.M.; Cuellar, M.F.; Russo, A. Eugenol and its synthetic analogues inhibit cell growth of human cancer cells (Part I). J. Braz. Chem. Soc. 2008, 19, 543–548, doi:10.1590/S0103-50532008000300024.
[43]  Kozlov, N.G.; Gusak, K.N.; Tereshko, A.B.; Dikusar, E.A. Vanillin esters of aliphatic acids in the synthesis of 4,7-phenanthroline derivatives. Russ. J. Organ. Chem. 2004, 40, 705–710, doi:10.1023/B:RUJO.0000043718.23826.ac.
[44]  Curini, M.; Epifano, F.; Marcotullio, M.C.; Rosati, O.; Rossi, M. Heterogeneous catalysis in acetylation of alcohols and phenols promoted by zirconium sulfophenyl phosphate. Synth. Commun. 2000, 30, 1319–1329, doi:10.1080/00397910008087154.
[45]  Jayatilake, G.S.; Baker, B.J.; McClintock, J.B. Isolation and Identification of a Stilbene Derivative From The Antarctic Sponge Kirkpatrickia Variolosa. J. Nat. Prod. 1995, 58, 1958–1960, doi:10.1021/np50126a028.
[46]  Bodrikov, I.V.; Borisova, N.V.; Chiyanov, A.A.; Kurskii, Y.A.; Fukin, G.K. Vinylic substitution in the reaction of betulin diacetate with tert-butyl hypochlorite. Russ. J. Organ. Chem. 2013, 49, 78–82, doi:10.1134/S1070428013010144.
[47]  Deng, Y.; Snyder, J.K. Preparation of a 24-nor-1,4-dien-3-one triterpene derivative from betulin: A new route to 24-nortriterpene analogues. J. Org. Chem. 2002, 67, 2864–2873, doi:10.1021/jo010929h.
[48]  Gordon, A.J. Acetyl salicylamide O- to N-acetyl migration. Tetrahedron 1967, 23, 863–870, doi:10.1016/0040-4020(67)85034-8.
[49]  Sasaki, T.; Yamakoshi, J.; Saito, M.; Kasai, K.; Matsudo, T.; Kikuchi, M.; Koga, T.; Mori, K. Synthesis of 4-hydroxy-3(2H)-furanone acyl derivatives and their anti-cataract effect on spontaneous cataract rats (ICR/f). Biosci. Biotechnol. Biochem. 1998, 62, 2145–2154, doi:10.1271/bbb.62.2145.

Full-Text

comments powered by Disqus

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133

WeChat 1538708413