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OH reaction with N-methyl-2-pyrrolidone, N-methylsuccinimide and
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Reaction of OH Radicals with N-Methyl Pyrrolidinone, N-Methyl Succinimide and
N-Formyl Pyrrolidinone. Journal of Atmospheric Chemistry, 54: 89-102.
Spittler, M., Barnes,
I., Bejan, I., Brockmann, K., Benter, Th., and Wirtz, K., 2006. Reactions of
NO3 radicals with limonene and α-pinene: Product and SOA formation. Atmospheric
Environment, 40: S116-S127.
Tadic, J., Moortgat, G.
K., and Wirtz, K., 2006. Photolysis of glyoxal in air. Journal of
Photochemistry and Photobiology A: Chemistry, 177: 116-124.
Thiault, G., Mellouki,
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Reaction of OH with a Series of Acetals at 298 ± 4K. International
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para la medida de contaminantes atmosféricos. XI Congreso de Ingeniería Ambiental.
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Vera, T., 2005.
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atmospheric conditions. Doctor of Natural Sciences. Combined Faculties
for the Natural Sciences and Mathematics of the Rupertus Carola University of
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Volkamer, R., Etzkorn,
T., Geyer, A., and Platt, U., 1998. Correction of the oxygen interference with
UV spectroscopic (DOAS) measurements of monocyclic aromatic hydrocarbons in the
atmosphere. Atmospheric Environment, 32: 3731-3747.
Volkamer, R.,
Junkermann, R., Wirtz, K., and Platt, U., 2002. Formation of Formaldehyde,
Glyoxal and Methylglyoxal from Toluene + OH reaction in the presence of NOx.
In: The EGS 27 th General Assembly. 21-26 April 2002. Nice, France.
Volkamer, R., Klotz, B.,
Barnes, I., Imamura, T., Wirtz, K., Washida, N., Becker, K. H., and Platt, U.,
2002. OH-initiated oxidation of benzene. Part I. Ohenol formation under
atmospheric conditions. Phys.Chem.Chem.Phys., 4: 1598-1610.
Volkamer, R., Platt, U.,
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of BTXM: a DOAS study on ring-retaining products and glyoxal. In: The
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Volkamer, R., Becker, K.
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Formation and Atmospheric Fate of Phenol-type Compounds in the Presence of NOx.
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Volkamer, R., Uecker,
J., and Wirtz, K., 1999. Photooxidation of P-Xylene: an outdoor smog chamber
sutdy using DOAS for the determination of ring-retainig products yields.
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Wagner, V., Jenkin, M.
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Modelling of the photooxidation of toluene: conceptual ideas for validating
detailed mechanisms. Atmospheric Chemistry and Physics, 3: 89-106.
Wenger, J., Collins, E.,
Sidebottom, H., Le Calvé, S., Mellouki, A., Le Bras, G., and Wirtz, K., 1999.
Atmospheric Oxidation of Ethers Under High and Low NOx Conditions. In: Conbined
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Photolysis of Chloral under Atmospheric Conditions. Environmental
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Winterhalter, R., Niels,
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Products and Mechanism of the Photolysis and Comparison with the OH Radical
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Determination of Photolysis Frequencies and Quantum Yields for Small Carbonyl
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EUPHORE chambers and technical support for the use of all available analytical
facilities.
Zador, J., Wagner, V.,
Wirtz, K., and Pilling, M. J., 2005. Quantitative assessment of uncertainties
for a model of tropospheric ethene oxidation using the European Photoreactor
(EUPHORE). Atmospheric Environment, 39: 2805-2817.
Zielinska, B., McDaniel,
M., Stockwell, W., Seagrave, J. Cl., McDonald, J., Wiesen, P., Kleffman, J.,
Kurtenbach, R., and Wirtz, K., 2004. Atmospheric Transformations of Diesel
Emissions. In: Health Institute (HEI) Annual Conference. 2-4 May,
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Zielinska, B., Sagebiel,
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