O/CO/H2O ices



Yüklə 3,96 Mb.
səhifə3/3
tarix22.07.2018
ölçüsü3,96 Mb.
#58136
1   2   3
1999, 283, 1505-1507.

16. Smith, R. S.; Petrik, N. G.; Kimmel, G. A.; Kay, B. D., Thermal and Nonthermal Physiochemical Processes in Nanoscale Films of Amorphous Solid Water. Accounts of Chemical Research 2012, 45, 33-42.

17. Galvez, O.; Mate, B.; Herrero, V. J.; Escribano, R., AMMONIUM AND FORMATE IONS IN INTERSTELLAR ICE ANALOGS. Astrophysical Journal 2010, 724, 539-545.

18. (a) Moreno, M. A.; Galvez, O.; Mate, B.; Herrero, V. J.; Escribano, R., Formate Ion: Structure and Spectroscopic Properties. Journal of Physical Chemistry A 2011, 115, 70-75; (b) Ito, K.; Bernstein, H. J., THE VIBRATIONAL SPECTRA OF THE FORMATE, ACETATE, AND OXALATE IONS. Canadian Journal of Chemistry-Revue Canadienne De Chimie 1956, 34, 170-178.

19. Hudson, R. L.; Moore, M. H., IR spectra of irradiated cometary ice analogues containing methanol: a new assignment, a reassignment, and a nonassignment. Icarus 2000, 145, 661-663.

20. Andrade, D. P. P.; de Barros, A. L. F.; Pilling, S.; Domaracka, A.; Rothard, H.; Boduch, P.; da Silveira, E. F., Chemical reactions induced in frozen formic acid by heavy ion cosmic rays. Monthly Notices of the Royal Astronomical Society 2013, 430, 787-796.

21. (a) Milligan, D. E.; Jacox, M. E., INFRARED SPECTRUM AND STRUCTURE OF INTERMEDIATES IN REACTION OF OH WITH CO. Journal of Chemical Physics 1971, 54, 927-&; (b) Oba, Y.; Watanabe, N.; Kouchi, A.; Hama, T.; Pirronello, V., EXPERIMENTAL STUDY OF CO2 FORMATION BY SURFACE REACTIONS OF NON-ENERGETIC OH RADICALS WITH CO MOLECULES. Astrophysical Journal Letters 2010, 712, L174-L178.

22. Francisco, J. S.; Muckerman, J. T.; Yu, H. G., HOCO Radical Chemistry. Accounts of Chemical Research 2010, 43, 1519-1526.

23. (a) Frost, M. J.; Sharkey, P.; Smith, I. W. M., REACTION BETWEEN OH (OD) RADICALS AND CO AT TEMPERATURES DOWN TO 80 K - EXPERIMENT AND THEORY. Journal of Physical Chemistry 1993, 97, 12254-12259; (b) Kohno, N.; Izumi, M.; Kohguchi, H.; Yamasaki, K., Acceleration of the Reaction OH + CO = H + CO2 by Vibrational Excitation of OH. Journal of Physical Chemistry A 2011, 115, 4867-4873; (c) Garrod, R. T.; Pauly, T., ON THE FORMATION OF CO2 AND OTHER INTERSTELLAR ICES. Astrophysical Journal 2011, 735, 15; (d) C. Yuan; Cooke, I. R.; Yates, J. T., A new source of CO2 in the universe: A photoactivated Eley-Rideal surface reaction on water ices. Astrophysical Journal Letters 2014, 791, L21.

24. Kevan, L., Radiation chemistry of frozen polar systems. In Actions Chimiques et Biologiques des Radiations, Haïssinsky, M., Ed. Masson: Paris, 1969; Vol. 13, pp 57-117.

25. (a) Kimmel, G. A.; Orlando, T. M., Low-Energy (5-120 eV) Electron-Stimulated Dissociation of Amorphous D2O Ice - D (2 S), O (3 P2,1,0), and O (1 D2) Yields and Velocity Distributions. Physical Review Letters 1995, 75, 2606-2609; (b) Kimmel, G. A.; Orlando, T. M.; Cloutier, P.; Sanche, L., Low-energy (5-40 eV) electron-stimulated desorption of atomic hydrogen and metastable emission from amorphous ice. Journal of Physical Chemistry B 1997, 101, 6301-6303; (c) Orlando, T. M.; Kimmel, G. A., The role of excitons and substrate temperature in low-energy (5-50 eV) electron-stimulated dissociation of amorphous D2O ice. Surface Science 1997, 390, 79-85.

26. (a) LaVerne, J. A.; Pimblott, S. M., Effect of elastic collisions on energy deposition by electrons in water. Journal of Physical Chemistry A 1997, 101, 4504-4510; (b) Pimblott, S. M.; LaVerne, J. A.; Mozumder, A., Monte Carlo simulation of range and energy deposition by electrons in gaseous and liquid water. Journal of Physical Chemistry 1996, 100, 8595-8606; (c) Petrik, N. G.; Kimmel, G. A., Low-energy electron-stimulated luminescence of thin H2O and D2O layers on Pt(111). Journal of Physical Chemistry B 2005, 109, 15835-15841.

27. (a) Kimmel, G. A.; Orlando, T. M., Observation of negative ion resonances in amorphous ice via low-energy (5-40 eV) electron-stimulated production of molecular hydrogen. Physical Review Letters 1996, 77, 3983-3986; (b) Kimmel, G. A.; Orlando, T. M.; Vezina, C.; Sanche, L., Low-Energy Electron-Stimulated Production of Molecular-Hydrogen from Amorphous Water Ice. Journal of Chemical Physics 1994, 101, 3282-3286; (c) Kimmel, G. A.; Tonkyn, R. G.; Orlando, T. M., Kinetic and Internal Energy-Distributions of Molecular-Hydrogen Produced from Amorphous Ice by Impact of 100 eV Electrons. Nuclear Instruments & Methods in Physics Research Section B- Beam Interactions with Materials and Atoms 1995, 101, 179-183.

28. Sieger, M. T.; Simpson, W. C.; Orlando, T. M., Production of O2 on icy satellites by electronic excitation of low-temperature water ice. Nature 1998, 394, 554-556.

29. Oba, Y.; Watanabe, N.; Kouchi, A.; Hama, T.; Pirronello, V., Experimental studies of surface reactions among OH radicals that yield H2O and CO2 at 40-60 K. Physical Chemistry Chemical Physics 2011, 13, 15792-15797.

30. Roser, J. E.; Vidali, G.; Manico, G.; Pirronello, V., Formation of carbon dioxide by surface reactions on ices in the interstellar medium. Astrophysical Journal 2001, 555, L61-L64.

31. (a) Garand, E.; Klein, K.; Stanton, J. F.; Zhou, J.; Yacovitch, T. I.; Neumark, D. M., Vibronic Structure of the Formyloxyl Radical (HCO2) via Slow Photoelectron Velocity-Map Imaging Spectroscopy and Model Hamiltonian Calculations. Journal of Physical Chemistry A 2010, 114, 1374-1383; (b) Kim, E. H.; Bradforth, S. E.; Arnold, D. W.; Metz, R. B.; Neumark, D. M., STUDY OF HCO2 AND DCO2 BY NEGATIVE-ION PHOTOELECTRON-SPECTROSCOPY. Journal of Chemical Physics 1995, 103, 7801-7814; (c) Ray, A. W.; Shen, B. B.; Poad, B. L. J.; Continetti, R. E., State-resolved predissociation dynamics of the formyloxyl radical. Chemical Physics Letters 2014, 592, 30-35; (d) Kieninger, M.; Ventura, O. N.; Suhai, S., Density functional investigations of carboxyl free radicals: Formyloxyl, acetyloxyl, and benzoyloxyl radicals. International Journal of Quantum Chemistry 1998, 70, 253-267; (e) Li, J.; Wang, Y. M.; Jiang, B.; Ma, J. Y.; Dawes, R.; Xie, D. Q.; Bowman, J. M.; Guo, H., Communication: A chemically accurate global potential energy surface for the HO+CO = H+CO2 reaction. Journal of Chemical Physics 2012, 136, 041103.



32. Awad, Z.; Chigai, T.; Kimura, Y.; Shalabiea, O. M.; Yamamoto, T., New rate constants of hydrogenation of CO on H2O-CO ice surfaces. Astrophysical Journal 2005, 626, 262-271.
Yüklə 3,96 Mb.

Dostları ilə paylaş:
1   2   3




Verilənlər bazası müəlliflik hüququ ilə müdafiə olunur ©genderi.org 2024
rəhbərliyinə müraciət

    Ana səhifə