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Acid-Free Nitration of Benzene and Toluene in Zeolite NaZSM-5

DOI: 10.1155/2013/164868

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Abstract:

The syntheses of nitrobenzene and p-nitrotoluene directly from benzene, toluene, and NO2 within the pore network of the initially acid-free zeolite NaZSM-5 are reported for the first time. The active species , formed by the interaction of NO2 with the Na+ cations present on the internal surface, results in the acid-free electrophilic substitution of the aromatic ring. There are two distinct reservoirs for the reagents: one associated with close proximity to the cation sites and the other associated with the siliceous areas of the pore network. Up to 34% of the hydrocarbon and 70% of the available NO2 are reacted at 50°C. Only the cation associated sites are reactive at low temperature, and there appears to be little mobility between the sites under the reaction conditions. There is no evidence of a second nitration occurring. This represents a novel route to the single nitration of benzene and toluene and for toluene, the generation of the para isomer exclusively. The pore network of the NaZSM-5 restricts the available reaction volume and transition state geometry allowing only the para-substituted product. 1. Introduction As part of an investigation into employing heterogeneous catalysis to selectively produce small industrial intermediates, nitrobenzene and para-nitrotoluene were synthesized directly from benzene and toluene and NO2 in the initially acid-free zeolite, NaZSM-5. Approximately 95% of the >1.5 106 tonnes of nitrobenzene produced annually is used in the production of aniline [1]. Most of the remainder is used for precursors in rubber, pesticides, dyes, and pharmaceuticals such as Acetaminophen [1, 2]. Para-nitrotoluene is used in the synthesis of p-toluidine, which in turn is used to manufacture dyes and as accelerators for cyanoacrylate adhesives [3]. ZSM-5 is a medium pore pentasil zeolite [4, 5] with two perpendicular channel systems (see Figure 1). The first is a straight channel of elliptical cross section of 0.55 0.51?nm, and the second is sinusoidal with dimensions of 0.56 0.53?nm [6]. Its most valuable industrial process is the isomerization of xylenes to enhance the fraction of para-xylene in the product stream [7–9]. This is thought to result from the aluminosilicate channel wall restricting the available transition state volume and enhancing the diffusion of the para-isomer down the pores [10]. The void space of the channel system easily accommodates para-substituted benzene rings, but is too restricted to allow easy movement of ortho- and meta-substituted species. ZSM-5 would thus be ideal for the selective formation of

References

[1]  G. Booth, “Nitro compounds, aromatic,” in Ullmann's Encyclopedia of Industrial Chemistry, John Wiley & Sons, New York, NY, USA, 2007.
[2]  A. Bhattacharya, V. C. Purohit, V. Suarez, R. Tichkule, G. Parmer, and F. Rinaldi, “One-step reductive amidation of nitro arenes: application in the synthesis of Acetaminophen,” Tetrahedron Letters, vol. 47, no. 11, pp. 1861–1864, 2006.
[3]  K. Konstantinov, M. Pavlova, M. Glushkov, and L. Dicheva, “Synthesis of methyl 2-cyanoacrylate,” Khimiya i Industriya, vol. 5, pp. 218–219, 1982.
[4]  R. J. Argauer and G. R. Landolt, U.S. Patent 3 702 886, 1972.
[5]  F. G. Dwyer and E. E. Jenkins, U.S. Patent 3 941 871, 1976.
[6]  D. H. Olson, G. T. Kokotallo, S. L. Lawton, and W. M. Meier, “Crystal structure and structure-related properties of ZSM-5,” The Journal of Physical Chemistry, vol. 85, no. 15, pp. 2238–2243, 1981.
[7]  R. W. Neuzil, U.S. Patent 3 558 730, 1973.
[8]  R. W. Neuzil, U.S. Patent 3 558 732, 1973.
[9]  J. J. Ward, “Molecular sieve catalysis,” in Applied Industrial Catalysis, B. B. Leach, Ed., vol. 3, p. 271, Academic Press, New York, NY, USA, 1984.
[10]  J. K?rger and D. M. Ruthven, Diffusion in Zeolites and Other Microporous Solids, John Wiley & Sons, New York, NY, USA, 1992.
[11]  J. March, Advanced Organic Chemistry, John Wiley & Sons, New York, NY, USA, 3rd edition, 1985.
[12]  S. Takenaka, T. Nishida, and J. Kanemoto, U.S. Patent 4 476 335, 1984.
[13]  I. Schumaker and K. B. Wang, U.S. Patent 4 415 744, 1983.
[14]  I. Schumaker, U.S. Patent 4 618 733, 1986.
[15]  N. V. Testova, L. V. Malysheva, K. G. Ione, E. A. Paukshtis, and N. F. Salakutdinov, “Zeolite catalysis for the solution of environmental problens,” in Proceedings of the International Meeting, Yaroslavl, Russia, 1992.
[16]  N. F. Salkhutdinov, K. G. Ione, E. A. Kobzar, and L. V. Malysheva, “Gas-phase nitration of aromatic compounds by nitrogen dioxide on zeolites,” Zhurnal Organicheskoi Khimii, vol. 29, pp. 546–558, 1993.
[17]  L. V. Malysheva, V. Ludmila, E. A. Paukshtis, and K. G. Ione, “Nitration of aromatics by nitrogen oxides on zeolite catalysts: comparison of reaction in the gas phase and solutions,” Catalysis Reviews, vol. 37, pp. 179–226, 1995.
[18]  S. J. Kirkby and H. Frei, “Highly selective photochemical and thermal chlorination of benzene by Cl2 in NaZSM-5,” Journal of Physical Chemistry B, vol. 102, no. 37, pp. 7106–7111, 1998.
[19]  H. P. Wang, T. Yu, B. A. Garland, and E. M. Eyring, “Benzene in zeolite ZSM-5 studied by diffuse reflectance infrared spectroscopy,” Applied Spectroscopy, vol. 44, no. 6, pp. 1070–1073, 1990.
[20]  G. Herzberg, Infrared and Raman Spectra of Polyatomic Molecules, D. Van Nostrand, New York, NY, USA, 1945.
[21]  R. V. St. Louis and B. Crawford Jr., “Infrared spectrum of matrix-isolated NO2,” Journal of Chemical Physics, vol. 42, no. 3, p. 857, 1965.
[22]  G. Herzberg, Spectra of Diatomic Molecules, D. Van Nostrand, New York, NY, USA, 1950.
[23]  J. W. Nebgen, A. D. McElroy, and H. F. Klodowski, “Raman and infrared spectra of nitronium perchlorate,” Inorganic Chemistry, vol. 4, no. 12, pp. 1796–1799, 1965.
[24]  C. C. Chao and J. H. Lundsford, “Infrared studies of the disproportionation reaction of nitric oxide on Y-type zeolites,” Journal of the American Chemical Society, vol. 93, no. 1, pp. 71–77, 1971.
[25]  S. Vasenkov and H. Frei, “Observation of acetyl radical in a zeolite by time. Resolved FT-IR spectroscopy,” Journal of the American Chemical Society, vol. 120, no. 16, pp. 4031–4032, 1998.
[26]  S. Vasenkov and H. Frei, “Time-resolved study of acetyl radical in zeolite NaY by step-scan FT-IR spectroscopy,” The Journal of Physical Chemistry A, vol. 104, no. 18, pp. 4327–4332, 2000.
[27]  D. E. Milligan and M. E. Jacox, “Matrix-isolation study of the interaction of electrons and alkali metal atoms with various nitrogen oxides. Infrared spectra of the species NO-, NO2-, and N2O2-,” The Journal of Chemical Physics, vol. 55, no. 7, p. 3404, 1971.
[28]  P. H. Kasai and R. Bishop Jr., “Electron spin resonance study of nitric oxide adsorption on Linde type Y zeolites,” Journal of the American Chemical Society, vol. 94, no. 16, pp. 5560–5566, 1972.
[29]  G. Herzberg, Infrared and Raman Spectra of Polyatomic Molecules, D. Van Nostrand, New York, NY, USA, 1945.
[30]  J. D. Laposa, “Vibrational spectra of nitrobenzene-d5,” Spectrochimica Acta A, vol. 35, no. 1, pp. 65–71, 1979.

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