Citation:
Long-Qiang Xiao, Xiang-Xiang Jia, Li-Qiong Liao, Li-Jian Liu. Synthesis of azo-incorporated copolymers by C1/N2C1 copolymerization under microwave irradiation[J]. Chinese Chemical Letters,
;2014, 25(12): 1601-1606.
doi:
10.1016/j.cclet.2014.09.009
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Catalyst-free copolymerization of ethyl diazoacetate (EDA) with carbethoxycarbene (CEC) has been achieved through two approaches: microwave irradiation and enzyme-assisted (Novozyme-435) system. The structure of the copolymer was characterized by MALDI-TOF MS (m/z from 2000 to 2450), which suggested that the main chain of the copolymer consisted of -CH(COOEt)-and -N55N-CH(COOEt)-frameworks. Fourier transform infrared (FTIR) spectrometry, elemental analysis, and Raman spectrometry proved the incorporation of azo group in the copolymer. The results indicated that the CEC radicals were generated under microwave irradiation (with or without Novozyme-435) from EDA. The mechanism study described that the generation speed of CEC radical was faster than its polymerization, and the excess CEC radicals improved the activity of the N2C1 group, thus inducing some EDA molecules as radicals. The two kinds of radicals co-coupled to result in poly(CEC-co-EDA) through the C1/N2C1 copolymerization, but the homopolymerization of CEC radical occurred quicker than its cocoupling with activated EDA
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-
[1]
[1] L. Xiao, L. Liao, X. Guo, L. Liu, One-pot synthesis of polyester-polyolefin copolymers by combining ring-opening polymerization and carbene polymerization, Macromol. Chem. Phys. 214 (2013) 2500-2506.
-
[2]
[2] L.Q. Xiao, S.J. Cai, Q.Y. Liu, et al., One-step synthesis of polypyrazoles and selfassembled polypyrazole-copper catalysts for click chemistry, Polym. Chem. 5 (2014) 607-613.
-
[3]
[3] Q. Lin, P. Chen, Y.P. Fu, et al., A green synthesis of a simple chemosensor that could instantly detect cyanide with high selectivity in aqueous solution, Chin. Chem. Lett. 24 (2013) 699-702.
-
[4]
[4] S.J. Cai, L.Q. Xiao, L.Q. Liao, L.J. Liu, Catalyst-free cyclopropanation of alkenes with diazocompounds under microwave irradiation, Chin. J. Org. Chem. 33 (2013) 2602-2606.
-
[5]
[5] L.Q. Xiao, Y. Li, X.X. Jia, L.Q. Liao, L.J. Liu, Microwave-assisted one-pot copolymerization of cyclic monomers and ethyl diazoacetate, Polym. Int. 63 (2014) 1154-1158.
-
[6]
[6] L.Q. Xiao, L.Q. Liao, L.J. Liu, Chemical modification of graphene oxide with carbethoxycarbene under microwave irradiation, Chem. Phys. Lett. 556 (2013) 376-379.
-
[7]
[7] B. Mohammadi, M. Adib, Microwave assisted one-pot tandem three-component synthesis of 2,4,5-triary1-2-4-dihydro-3H-1,2,4-triazol-3-one derivatives, Chin. Chem. Lett. 25 (2014) 553-556.
-
[8]
[8] X.P. Ouyang, C.L. Liu, Y.X. Pang, X.Q. Qiu, Synthesis of a trimeric lignin model compound composed of a-O-4 and b-O-4 linkages under microwave irradiation, Chin. Chem. Lett. 24 (2013) 1091-1094.
-
[9]
[9] L.J. Liu, S.J. Cai, Y. Tan, et al., Ring opening insertion polymerization of e-caprolactone with hydrogen phosphonate initiators, J. Polym. Sci. Part A: Polym. Chem. 47 (2009) 6214-6222.
-
[10]
[10] S. Kobayashi, H. Uyama, S. Kimura, Enzymatic polymerization, Chem. Rev. 101 (2001) 3793-3818.
-
[11]
[11] Y. Yanagishita, M. Kato, K. Toshima, S. Matsumura, Chemoenzymatic synthesis and chemical recycling of sustainable polyurethanes, ChemSusChem 1 (2008) 133-142.
-
[12]
[12] L. Ragupathy, U. Ziener, R. Dyllick-Brenzinger, B. von Vacano, K. Landfester, Enzyme-catalyzed polymerizations at higher temperatures: synthetic methods to produce polyamides and new poly(amide-co-ester)s, J. Mol. Catal. B: Enzym. 76 (2012) 94-105.
-
[13]
[13] F. He, S. Li, H. Garreau, M. Vert, R. Zhuo, Enzyme-catalyzed polymerization and degradation of copolyesters of ε-caprolactone and γ-butyrolactone, Polymer 46 (2005) 12682-12688.
-
[14]
[14] F. He, S. Li, M. Vert, R. Zhuo, Enzyme-catalyzed polymerization and degradation of copolymers prepared from ε-caprolactone and poly(ethylene glycol), Polymer 44 (2003) 5145-5151.
-
[15]
[15] A.J. Arduengo, R.L. Harlow, M. Kline, A stable crystalline carbene, J. Am. Chem. Soc. 113 (1991) 361-363.
-
[16]
[16] C.M. Crudden, D.P. Allen, Stability and reactivity of N-heterocyclic carbene complexes, Coord. Chem. Rev. 248 (2004) 2247-2273.
-
[17]
[17] M.K. Samantaray, V. Katiyar, D. Roy, et al., A cationic (N-heterocyclic carbene)-silver complex as catalyst for bulk ring-opening polymerization of L-lactides, Eur. J. Inorg. Chem. 2006 (2006) 2975-2984.
-
[18]
[18] L. Xiao, Y. Li, L. Liao, L. Liu, Denitrogen alkene polymerization of bisdiazo compounds by copper(Ⅱ) catalysts, New J. Chem. 37 (2013) 1874-1877.
-
[19]
[19] A.F. Noels, Carbene chemistry: stereoregular polymers from diazo compounds, Angew. Chem. 46 (2007) 1208-1210.
-
[20]
[20] L. Liu, Y. Song, H. Li, Carbene polymerization: characterization of poly(carballyloxycarbene), Polym. Int. 51 (2002) 1047-1049.
-
[21]
[21] E. Jellema, A.L. Jongerius, J.N. Reek, B. de Bruin, C1 polymerisation and related C-C bond forming ‘carbene insertion' reactions, Chem. Soc. Rev. 39 (2010) 1706-1723.
-
[22]
[22] A.J.C. Walters, O. Troeppner, I. Ivanovic-Burmazovic, et al., Stereospecific carbene polymerization with oxygenated Rh(diene) species, Angew. Chem. Int. Ed. 51 (2012) 5157-5161.
-
[23]
[23] E. Ihara, M. Kida, M. Fujioka, et al., Palladium-mediated copolymerization of diazocarbonyl compounds with phenyldiazomethane, J. Polym. Sci. Part A: Polym. Chem. 45 (2007) 1536-1545.
-
[24]
[24] E. Ihara, M. Kida, T. Itoh, K. Inoue, Organoaluminum-mediated polymerization of diazoketones, J. Polym. Sci. Part A: Polym. Chem. 45 (2007) 5209-5214.
-
[25]
[25] E. Ihara, K. Saiki, Y. Goto, T. Itoh, K. Inoue, Polycondensation of bis(diazocarbonyl) compounds with aromatic diols and cyclic ethers: synthesis of new type of polyetherketones, Macromolecules 43 (2010) 4589-4598.
-
[26]
[26] E. Ihara, Y. Ishiguro, N. Yoshida, et al., (N-Heterocyclic carbene)Pd/borate initiating systems for polymerization of ethyl diazoacetate, Macromolecules 42 (2009) 8608-8610.
-
[27]
[27] D.G.H. Hetterscheid, C. Hendriksen, W.I. Dzik, et al., Rhodium-mediated stereoselective polymerization of “carbenes”, J. Am. Chem. Soc. 128 (2006) 9746-9752.
-
[28]
[28] E. Ihara, T. Hiraren, T. Itoh, K. Inoue, Palladium-mediated polymerization of cyclic diazoketones, J. Polym. Sci. Part A: Polym. Chem. 46 (2008) 1638-1648.
-
[29]
[29] J.D. Clark, J.D. Heise, A.S. Shah, et al., Process research, development, and pilotplant preparation of clofencet, a novel wheat hybridizing agent: lewis acidcatalyzed reaction of ethyl diazoacetate with 4-chlorophenyl hydrazonoacetaldehyde, Org. Process Res. Dev. 8 (2004) 176-185.
-
[30]
[30] O. Illa, C. Rodríguez-García, C. Acosta-Silva, et al., Cyclopropanation of cyclohexenone by diazomethane catalyzed by palladium diacetate: evidence for the formation of palladium(0) nanoparticles, Organometallics 26 (2007) 3306-3314.
-
[31]
[31] E. Ihara, A. Nakada, T. Itoh, K. Inoue, Transition metal-mediated copolymerization of diazocarbonyl compounds with alkyne and isocyanide, Macromolecules 39 (2006) 6440-6444.
-
[32]
[32] G.W. Cowell, A. Ledwith, Developments in the chemistry of diazo-alkanes, Quart. Rev. Chem. Soc. 24 (1970) 119-167.
-
[33]
[33] N.M. Franssen, J.N. Reek, B. de Bruin, A different route to functional polyolefins: olefin-carbene copolymerization, Dalton Trans. 42 (2013) 9058-9068.
-
[34]
[34] E. Ihara, H. Nishida, M. Fujii, T. Itoh, K. Inoue, Thermally induced polymerization and copolymerization with styrene of diazoketones in the presence of benzoquinone, Polym. Bull. 66 (2011) 3-15.
-
[35]
[35] H.Z. Qi, Z.H. Yang, J.X. Xu, Synthesis of 3-alkoxy/aryloxy-beta-lactams using diazoacetate esters as ketene precursors under photoirradiation, Synthesis 5 (2011) 723-730.
-
[36]
[36] L.Q. Liao, L.J. Liu, C. Zhang, F. He, R.X. Zhuo, Heating characteristics and polymerization of epsilon-caprolactone under microwave irradiation, J. Appl. Polym. Sci. 90 (2003) 2657-2664.
-
[37]
[37] L.Q. Liao, L.J. Liu, C. Zhang, et al., Microwave-assisted ring-opening polymerization of epsilon-caprolactone, J. Polym. Sci. Part A: Polym. Chem. 40 (2002) 1749-1755.
-
[38]
[38] L. Liao, L. Liu, C. Zhang, S. Gong, Microwave-assisted ring-opening polymerization of epsilon-caprolactone in the presence of ionic liquid, Macromol. Rapid Commun. 27 (2006) 2060-2064.
-
[39]
[39] K. Maruoka, M. Oishi, H. Yamamoto, Novel anionic oligomerization by a new, sequential generation of organolithium compounds, Macromolecules 29 (1996) 3328-3329.
-
[40]
[40] W.M. Nau, G. Greiner, H. Rau, et al., Fluorescence of 2,3-diazabicyclo[2.2.2]oct-2-ene revisited: solvent-induced quenching of the n,π*-excited state by an aborted hydrogen atom transfer, J. Phys. Chem. A 103 (1999) 1579-1584.
-
[41]
[41] E. Jellema, A.L. Jongerius, A.J.C. Walters, et al., Ligand design in Rh(diene)-mediated “carbene” polymerization; efficient synthesis of high-mass, highly stereoregular, and fully functionalized carbon-chain polymers, Organometallics 29 (2010) 2823-2826.
-
[42]
[42] E. Jellema, A.L. Jongerius, G.A. van Ekenstein, et al., Rhodium-mediated stereospecific carbene polymerization: from homopolymers to random and block copolymers, Macromolecules 43 (2010) 8892-8903.
-
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