Kinetics of the reaction nitrogen dioxide + nitrogen trioxide + M at low pressures and 298 K
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(12)
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(1-3)
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- B. Picquet‐Varrault, M. Scarfogliero, W. Ait Helal, J‐F. Doussin. Reevaluation of the rate constant for the reaction propene + NO
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(2)
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3
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(10)
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- R.P. Wayne, G. Poulet, P. Biggs, J.P. Burrows, R.A. Cox, P.J. Crutzen, G.D. Hayman, M.E. Jenkin, G. Le Bras, G.K. Moortgat, U. Platt, R.N. Schindler. Halogen oxides: Radicals, sources and reservoirs in the laboratory and in the atmosphere. Atmospheric Environment 1995, 29
(20)
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(1)
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- P. Biggs, C. E. Canosa‐Mas, P. S. Monks, R. P. Wayne, Th. Benter, R. N. Schindler. The kinetics of the nitrate radical self‐reaction. International Journal of Chemical Kinetics 1993, 25
(10)
, 805-817. https://doi.org/10.1002/kin.550251002
- E. Becker, M. M. Rahman, R. N. Schindler. Determination of the Rate Constants for the Gas Phase Reactions of NO
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2
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(6)
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- J. Hjorth, J. Notholt, G. Restelli. A spectroscopic study of the equilibrium NO
2
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2
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5
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3
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2
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5
/NO
3
/NO
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(1)
, 51-65. https://doi.org/10.1002/kin.550240107
- E. Becker, U. Wille, M. M. Rahman, R. N. Schindler. An Investigation of the Reactions of NO
3
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(10)
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- R.P Wayne, I Barnes, P Biggs, J.P Burrows, C.E Canosa-Mas, J Hjorth, G Le Bras, G.K Moortgat, D Perner, G Poulet, G Restelli, H Sidebottom. The nitrate radical: Physics, chemistry, and the atmosphere. Atmospheric Environment. Part A. General Topics 1991, 25
(1)
, 1-203. https://doi.org/10.1016/0960-1686(91)90192-A
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(15)
, 2271-2281. https://doi.org/10.1039/FT9918702271
- C. A. Cantrell, J. A. Davidson, A. H. McDaniel, R. E. Shetter, J. G. Calvert. The equilibrium constant for N2O5⇄NO2+NO3: Absolute determination by direct measurement from 243 to 397 K. The Journal of Chemical Physics 1988, 88
(8)
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3
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(1)
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3
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2
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2
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5
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2
, O
2
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(3)
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- R. P. Wayne, S. J. Smith, R. A. Cox, I. W. Hall. Laboratory Studies of the Nitrate Radical. 1987, 282-291. https://doi.org/10.1007/978-94-009-3841-0_30
- A. R. Ravishankara, P. H. Wine, C. A. Smith, P. E. Barbone, A. Torabi. N
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O
5
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3
and O(
3
P
). Journal of Geophysical Research: Atmospheres 1986, 91
(D5)
, 5355-5360. https://doi.org/10.1029/JD091iD05p05355
- H. S. Johnston, C. A. Cantrell, J. G. Calvert. Unimolecular decomposition of NO
3
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2
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2
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5
/NO
3
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(D4)
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- C. A. SMITH, A. R. RAVISHANKARA, P. H. WINE. ChemInform Abstract: KINETICS OF THE REACTION NITROGEN DIOXIDE + NITROGEN TRIOXIDE + M AT LOW PRESSURES AND 298 K. Chemischer Informationsdienst 1985, 16
(26)
https://doi.org/10.1002/chin.198526026