Computational study on nitronium squarate – potential oxidizers for solid rocket propulsion

Computational study on nitronium squarate – potential oxidizers for solid rocket propulsion

The enthalpies of formation for solid ionic nitronium squarate, $[NO _2] _2$ [$C _4O _4$ ], and covalent squaric acid dinitrate ester, $O _2N-C _4O _4 -NO _2$ , were calculated using the complete basis set (CBS-4M) method of Petersson and coworkers in order to obtain very accurate energies. The covalent form ($O _2N-C _4O _4 -NO _2$) was identified as the more stable isomer. The combustion parameters with respect to possible use as ingredients in solid rocket motors for both stable species were calculated using the EXPLO5 code. The performance of an aluminized formulation with covalently bound dinitrate ester ($O _2N-C _4O _4 -NO _2$) was shown to be comparable to that of ammonium perchlorate/aluminum. This makes squaric acid dinitrate ester a potentially interesting perchlorate-free and environmentally benign oxidizer for solid rocket propulsion.

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  • 1. Klapötke, T. M. Chemie der hochenergetischen Materialien, de Gruyter, Berlin, New York, 2009.
  • 2. SERDP information: Cleanup CU-1164: http://www.p2pays.org/ref/19/18164.pdf (2/21/03).
  • 3. The official DoD source for perchlorate information:
  • 4. http://www.epa.gov/fedfac/documents/perchlorate links.htm
  • 5. SERDP & ESTCP Annual Symposium 2007:
  • 6. http://www.serdp-estcp.org/symposium2007/
  • 7. Urbansky, E. T. Environ. Sci. & Pollut. Res. 2002, 9, 187.
  • 8. Brown, G. M.; Gu, B. The Chemistry of Perchlorate in the Environment, Springer, New York, 2006.
  • 9. Stroo, H. F.; Ward, C. H. In Situ Bioremediation of Perchlorate in Groundwater, Springer, New York, 2009.
  • 10. a) Klapötke, T. M.; Sabate, C. M. Chem. Mater. 2008, 20(11), 3629. b) Darwich, C.; Klapötke, T. M.; Sabat´e, C. M. Chem. Eur. J. 2008, 14, 5756. c) Stierstorfer, J.; Klapötke, T. M.; Hammerl, A.; Chapman, B. Z. Anorg. Allg. Chem. 2008, 634, 1051. d) Göbel, M.; Klapötke, T. M. Z. Anorg. Allg. Chem. 2007, 633(7), 1006. e) Guo, Y.; Gao, H.; Twamley, B.; Shreeve, J. M. Adv. Mat. 2007, 19, 2884. f) Göbel, M.; Karaghiosoff, K.; Klapötke, T. M. Angew. Chem. Int. Ed. 2006, 45(36), 6037. g) Hiskey, M.; Hammerl, A.; Holl, G.; Klapötke, T. M.; Polborn, K.; Stierstorfer, J.; Weigand, J. J. Chem. Mater. 2005, 17, 3784. h) Xue, H.; Shreeve, J. M. Adv. Mat. 2005, 17, 2142. i) Göbel, M.; Klapötke, T. M. Adv. Funct. Mat. 2009, 19, 347-365.
  • 11. Frisch, M. Jl., Gaussian 03, Revision B04, Gaussian Inc., Wallingford, CT, 2004.
  • 12. Ochterski, W. D.; Petersson, G. A.; Montgomery J. J. A. J. Chem. Phys. 1996, 104, 2598.
  • 13. Montgomery J.; Frisch, M. J.; Ochterski, J. W.; Petersson, G. A. J. Chem. Phys. 2000, 112, 6532.
  • 14. Curtiss, L. A.; Raghavachari, K.; Redfern, P. C.; Pople, J. A. J. Chem. Phys. 1997, 106(3), 1063.
  • 15. Byrd, E. F. C.; Rice, B. M. J. Phys. Chem A 2006, 110(3), 1005.
  • 16. Rice, B. M.; Pai, Sh. V.; Hare, J. Combustion and Flame 1999, 118(3), 445.
  • 17. Linstrom, P. J.; Mallard, W.G. (eds.) NIST Chemistry WebBook, NIST Standard Reference Database Number 69, June 2005, National Institute of Standards and Technology, Gaithersburg MD, 20899 (http://webbook.nist.gov).
  • 18. Johnson, D. A. Some Thermodynamic Aspects of Inorganic Chemistry, 2nd edn., Cambridge University Press, Cambridge, 1982, Appendix 5.
  • 19. Jenkins, H. D. B.; Roobottom, H. K.; Passmore, J.; Glasser, L. Inorg. Chem. 1999, 38(16), 3609.
  • 20. Jenkins, H. D. B.; Tudela, D.; Glasser, L. Inorg. Chem. 2002, 41(9), 2364.
  • 21. Jenkins, H. D. B.; Glasser, L. Inorg. Chem. 2002, 41(17), 4378.
  • 22. Robl, C.; Gnutzmann, V.; Weiss, A. Z. Anorg. Allg. Chem. 1987, 549 187-194.
  • 23. Westwell, M. S.; Searle, M. S.; Wales, D. J.; Williams, D. H. J. Am. Chem. Soc. 1995, 117, 5013.
  • 24. Köhler, J.; Meyer, R. in: Explosivstoffe, 9th edn., Wiley-VCH, Weinheim, 1998.
  • 25. Suceska, M. EXPLO5 program, Zagreb, Croatia, 2005.
  • 26. Suceska, M. Materials Science Forum 2004, 465-466, 325-330.
  • 27. (a) Suceska, M. Propellants, Explos., Pyrotech. 1991, 16, 197; (b) Suceska, M. Propellants, Explos., Pyrotech. 1999, 24, 280-285.
  • 28. Hobbs, M. L.; Baer, M. R. Calibration of the BKW-EOS With a Large Product Species Data Base and Measured C-J Properties, Proc. of the 10th Symp. (International) on Detonation, ONR 33395-12, Boston, MA, July 12-16, 1993, p. 409.
  • 29. Klapöte, T. M.; Ang, H. G. Propellants, Explos., Pyrotech. 2001, 26, 221-224.
  • 30. ICT-Thermodynamic Code, Version 1.00, Fraunhofer Institut f¨ur Chemische Technologie, Pfinztal, 1998-2000.
  • 31. Hammond, G. S. J. Am. Chem. Soc. 1955, 77, 344.
  • 32. Klapötke, T. M.; Schulz, A. Quantum Chemical Methods in Main-Group Chemistry, Wiley, Chichester, New York, 1998, pp 93-98.
  • 33. (a) Politzer, P.; Murray, J. S. Computational Characterization of Energetic Materials, in: Pauling’s Legacy: Modern Modelling of the Chemical Bond, Maksic, Z. B. Orville-Thomas, W. J. (eds.), Theoretical and Computational Chemistry, 1999, Vol. 6, pp 347-363 (b) Politzer, P., Murray, J. S.; Seminario, J. M.; Lane, P.; Grice, M. E.; Concha, M. C. J. Mol. Struct. 2001, 573, 1. (c) Murray, J. S.; Lane, P.; Politzer, P. Molec. Phys. 1998, 93, 187; (d) Murray, J. S.; Lane, P.; Politzer, P. Mol. Phys. 1995, 85, 1. (e) Murray, J. S.; Concha, M. C.; Politzer, P. Molec. Phys. 2009, 107(1), 89.
  • 34. (a) Rice, B. M.; Hare, J. J. J. Phys. Chem. 2002, 106A, 1770 (b) Rice, B. M. Advanced Series in Physical Chemistry 2005, 16, 335. (c) Rice, B. M.; Sahu, S.; Owens, F. J. J. Mol. Struct. (THEOCHEM) 2002, 583, 69. (d) Rice, B. M.; Bressanini, D.; Adams, G. F.; Mowrey, R. C.; Page, M. Chem. Phys. Lett. 1991, 184(4), 335. (e) Rice, B. M.; Byrd, E. F. C.; Mattson, W. D. Computational Aspects of Nitrogen-Rich HEDMs, in: High Energy Density Materials, T. M. Klapötke (ed.), Structure and Bonding, Vol. 125, Springer, Berlin, Heidelberg, 2007, pp 153-194. 967
Turkish Journal of Chemistry-Cover
  • ISSN: 1300-0527
  • Yayın Aralığı: Yılda 6 Sayı
  • Yayıncı: TÜBİTAK