B. J. Allan, G. Mcfiggans, J. M. Plane, H. Coe, and G. G. Mcfadyen, The nitrate radical in the remote marine boundary layer, Journal of Geophysical Research: Atmospheres, vol.105, issue.D19, pp.24191-24204, 2000.

R. Atkinson and J. Arey, Gas-phase tropospheric chemistry of biogenic volatile organic compounds: a review, Atmospheric Environment, vol.37, pp.197-219, 2003.

R. Atkinson, D. L. Baulch, R. A. Cox, J. N. Crowley, R. F. Hampson et al., Evaluated kinetic and photochemical data for atmospheric chemistry: Volume II ? gas phase reactions of organic species, Atmospheric Chemistry and Physics, vol.6, issue.11, pp.3625-4055, 2006.
URL : https://hal.archives-ouvertes.fr/hal-00296018

P. Biggs, C. E. Canosa-mas, J. Fracheboud, D. E. Shallcross, and R. P. Wayne, Investigation into the kinetics and mechanism of the reaction of NO 3 with CH 3 O 2 at 298 K and 2.5 Torr: a potential source of OH in the night-time troposphere?, J. Chem. Soc., Faraday Trans, vol.90, pp.1205-1210, 1994.

J. Bossmeyer, T. Brauers, C. Richter, F. Rohrer, R. Wegener et al., Simulation chamber studies on the NO 3 chemistry of atmospheric aldehydes, Geophys. Res. Lett, vol.33, p.18810, 2006.

A. A. Boyd, P. M. Flaud, N. Daugey, R. Lesclaux, S. S. Brown et al., Rate constants for RO 2 +HO 2 reactions measured under a large excess of HO 2, Nighttime radical observations and chemistry, vol.107, pp.6405-6447, 2003.

S. S. Brown, H. Stark, and A. R. Ravishankara, Applicability of the steady state approximation to the interpretation of atmospheric observations of NO3and N2O5, Journal of Geophysical Research, vol.108, issue.D17, 2003.

S. S. Brown, J. E. Dibb, H. Stark, M. Aldener, M. Vozella et al., Nighttime removal of NOxin the summer marine boundary layer, Geophysical Research Letters, vol.31, issue.7, pp.n/a-n/a, 2004.

S. S. Brown, J. E. Dibb, H. Stark, M. Aldener, M. Vozella et al., Nighttime removal of NOxin the summer marine boundary layer, Geophysical Research Letters, vol.31, issue.7, pp.n/a-n/a, 2004.

S. S. Brown, J. A. Degouw, C. Warneke, T. B. Ryerson, W. P. Dubé et al., Nocturnal isoprene oxidation over the Northeast United States in summer and its impact on reactive nitrogen partitioning and secondary organic aerosol, Atmospheric Chemistry and Physics, vol.9, issue.9, pp.3027-3042, 2009.

S. S. Brown, J. A. Degouw, C. Warneke, T. B. Ryerson, W. P. Dubé et al., Nocturnal isoprene oxidation over the Northeast United States in summer and its impact on reactive nitrogen partitioning and secondary organic aerosol, Atmospheric Chemistry and Physics, vol.9, issue.9, pp.3027-3042, 2009.

J. B. Burkholder, S. P. Sander, J. Abbatt, J. R. Barker, R. E. Huie et al., Chemical Kinetics and Photochemical Data for Use in Atmospheric Studies, Evaluation No, J. Chem. Soc., Faraday Trans, vol.92, issue.18, pp.2211-2222, 1996.

J. N. Crowley, J. P. Burrows, G. K. Moortgat, G. Poulet, and G. Lebras, Room temperature rate coefficient for the reaction between CH3O2 and NO3, International Journal of Chemical Kinetics, vol.22, issue.7, pp.673-681, 1990.

J. N. Crowley, G. Schuster, N. Pouvesle, U. Parchatka, H. Fischer et al., Nocturnal nitrogen oxides at a rural mountain-site in south-western Germany, Atmospheric Chemistry and Physics, vol.10, issue.6, pp.2795-2812, 2010.

J. N. Crowley, G. Schuster, N. Pouvesle, U. Parchatka, H. Fischer et al., Nocturnal nitrogen oxides at a rural mountain-site in south-western Germany, Atmospheric Chemistry and Physics, vol.10, issue.6, pp.2795-2812, 2010.

A. R. Curtis and W. P. Sweetenham, Atomic Energy Research Establishment, 1987.

V. Daele, G. Laverdet, G. Le-bras, and G. Poulet, Kinetics of the Reactions CH3O + NO, CH3O + NO3, and CH3O2 + NO3, The Journal of Physical Chemistry, vol.99, issue.5, pp.1470-1477, 1995.

H. Dorn, R. L. Apodaca, S. M. Ball, T. Brauers, S. S. Brown et al., Intercomparison of NO<sub>3</sub> radical detection instruments in the atmosphere simulation chamber SAPHIR, Atmospheric Measurement Techniques, vol.6, issue.5, pp.1111-1140, 2013.

W. P. Dubé, S. S. Brown, H. D. Osthoff, M. R. Nunley, S. J. Ciciora et al., Aircraft instrument for simultaneous, in situ measurement of NO 3 and N 2 O 5 via pulsed cavity ring-down spectroscopy, Rev. Sci. Instrum, vol.77, p.34101, 2006.

P. M. Edwards, K. C. Aikin, W. P. Dube, J. L. Fry, J. B. Gilman et al., Transition from high- to low-NOx control of night-time oxidation in the southeastern US, Nature Geoscience, vol.10, issue.7, pp.490-495, 2017.

J. L. Fry, S. S. Brown, A. M. Middlebrook, P. M. Edwards, P. Campuzano-jost et al., Secondary organic aerosol (SOA) yields from NO<sub>3</sub> radical + isoprene based on nighttime aircraft power plant plume transects, Atmospheric Chemistry and Physics, vol.18, issue.16, pp.11663-11682, 2018.

H. Fuchs, W. P. Dube, S. J. Cicioira, and S. S. Brown, Determination of inlet transmission and conversion efficiencies for in situ measurements of the nocturnal nitrogen oxides, NO 3 , N 2 O 5 and NO 2 , via pulsed cavity ring-down spectroscopy, Anal. Chem, vol.80, pp.6010-6017, 2008.

H. Fuchs, S. M. Ball, B. Bohn, T. Brauers, R. C. Cohen et al., Intercomparison of measurements of NO<sub>2</sub> concentrations in the atmosphere simulation chamber SAPHIR during the NO3Comp campaign, Atmospheric Measurement Techniques, vol.3, issue.1, pp.21-37, 2010.

H. Fuchs, S. M. Ball, B. Bohn, T. Brauers, R. C. Cohen et al., Intercomparison of measurements of NO<sub>2</sub> concentrations in the atmosphere simulation chamber SAPHIR during the NO3Comp campaign, Atmospheric Measurement Techniques, vol.3, issue.1, pp.21-37, 2010.

A. Geyer and U. Platt, Temperature dependence of the NO 3 loss frequency: A new indicator for the contribution of NO 3 to the oxidation of monoterpenes and NO x removal in the atmosphere, J. Geophys. Res.-Atmos, vol.107, p.4431, 2002.

A. Geyer, B. Alicke, S. Konrad, T. Schmitz, J. Stutz et al., Chemistry and oxidation capacity of the nitrate radical in the continental boundary layer near Berlin, Journal of Geophysical Research: Atmospheres, vol.106, issue.D8, pp.8013-8025, 2001.

A. B. Guenther, X. Jiang, C. L. Heald, T. Sakulyanontvittaya, T. Duhl et al., The Model of Emissions of Gases and Aerosols from Nature version 2.1 (MEGAN2.1): an extended and updated framework for modeling biogenic emissions, Geoscientific Model Development, vol.5, issue.6, pp.1471-1492, 2012.

F. Heintz, U. Platt, H. Flentje, and R. Dubois, Long-term observation of nitrate radicals at the tor station, Kap Arkona (Rugen), J. Geophys. Res.-Atmos, vol.101, pp.22891-22910, 1996.

F. Helleis, G. K. Moortgat, and J. N. Crowley, Kinetic Investigations of the Reactions of CD3O2with NO and NO3at 298 K, The Journal of Physical Chemistry, vol.100, issue.45, pp.17846-17854, 1996.

J. Hjorth, C. Lohse, C. J. Nielsen, H. Skov, and G. Restelli, Products and mechanisms of the gas-phase reactions between nitrate radical and a series of alkenes, The Journal of Physical Chemistry, vol.94, issue.19, pp.7494-7500, 1990.

T. Hohaus, U. Kuhn, S. Andres, M. Kaminski, F. Rohrer et al., A new plant chamber facility, PLUS, coupled to the atmosphere simulation chamber SAPHIR, Atmospheric Measurement Techniques, vol.9, issue.3, pp.1247-1259, 2016.

R. Holzinger, W. J. Acton, W. J. Bloss, M. Breitenlechner, L. R. Crilley et al., Validity and limitations of simple reaction kinetics to calculate concentrations of organic compounds from ion counts in PTR-MS, Atmospheric Measurement Techniques, vol.12, issue.11, pp.6193-6208, 2019.
URL : https://hal.archives-ouvertes.fr/hal-02400841

M. E. Jenkin, J. C. Young, and A. R. Rickard, The MCM v3.3.1 degradation scheme for isoprene, Atmospheric Chemistry and Physics, vol.15, issue.20, pp.11433-11459, 2015.
URL : https://hal.archives-ouvertes.fr/hal-00301269

M. A. Khan, M. C. Cooke, S. R. Utembe, A. T. Archibald, R. G. Derwent et al., Global modeling of the nitrate radical (NO3) for present and pre-industrial scenarios, Atmospheric Research, vol.164-165, pp.347-357, 2015.

J. Krechmer, F. Lopez-hilfiker, A. Koss, M. Hutterli, C. Stoermer et al., Evaluation of a New Reagent-Ion Source and Focusing Ion-Molecule Reactor for Use in Proton-Transfer-Reaction Mass Spectrometry, Anal. Chem, vol.90, pp.12011-12018, 2018.

J. Lelieveld, T. M. Butler, J. N. Crowley, T. J. Dillon, H. Fischer et al., Atmospheric oxidation capacity sustained by a tropical forest, Nature, vol.452, issue.7188, pp.737-740, 2008.

J. Lelieveld, S. Gromov, A. Pozzer, and D. Taraborrelli, Global tropospheric hydroxyl distribution, budget and reactivity, Atmospheric Chemistry and Physics, vol.16, issue.19, pp.12477-12493, 2016.

J. M. Liebmann, G. Schuster, J. B. Schuladen, N. Sobanski, J. Lelieveld et al., Measurement of ambient NO3 reactivity: design, characterization and first deployment of a new instrument, Atmos. Meas. Tech, vol.10, pp.1241-1258, 2017.

J. M. Liebmann, G. Schuster, J. B. Schuladen, N. Sobanski, J. Lelieveld et al., Measurement of ambient NO<sub>3</sub> reactivity: design, characterization and first deployment of a new instrument, Atmospheric Measurement Techniques, vol.10, issue.3, pp.1241-1258, 2017.

J. M. Liebmann, E. Karu, N. Sobanski, J. Schuladen, M. Ehn et al., Direct measurement of NO<sub>3</sub> radical reactivity in a boreal forest, Atmospheric Chemistry and Physics, vol.18, issue.5, pp.3799-3815, 2018.

M. Martinez, D. Perner, E. M. Hackenthal, S. Kulzer, and L. Schutz, NO 3 at Helgoland during the NORDEX campaign in, J. Geophys. Res.-Atmos, vol.105, pp.22685-22695, 1996.

R. Mclaren, P. Wojtal, D. Majonis, J. Mccourt, J. D. Halla et al., NO<sub>3</sub> radical measurements in a polluted marine environment: links to ozone formation, Atmospheric Chemistry and Physics, vol.10, issue.9, pp.4187-4206, 2010.

D. Mogensen, R. Gierens, J. N. Crowley, P. Keronen, S. Smolander et al., Simulations of atmospheric OH, O 3 and NO 3 reactivities within and above the boreal forest, Atmos, Chem. Phys, vol.15, pp.3909-3932, 2015.

N. L. Ng, S. S. Brown, A. T. Archibald, E. Atlas, R. C. Cohen et al., Nitrate radicals and biogenic volatile organic compounds: oxidation, mechanisms, and organic aerosol, vol.17, pp.2103-2162, 2017.

F. Paulot, D. K. Henze, and P. O. Wennberg, Impact of the isoprene photochemical cascade on tropical ozone, Atmos. Chem. Phys, vol.12, pp.1307-1325, 2012.

G. J. Phillips, J. Thieser, M. Tang, N. Sobanski, G. Schuster et al., Estimating N 2 O 5 uptake coefficients using ambient measurements of NO 3 , N 2 O 5 , ClNO 2 and particle-phase nitrate, Atmos. Chem. Phys, vol.16, pp.13231-13249, 2016.

B. A. Ridley, F. E. Grahek, and J. G. Walega, A Small High-Sensitivity, Medium-Response Ozone Detector Suitable for Measurements from Light Aircraft, Journal of Atmospheric and Oceanic Technology, vol.9, issue.2, pp.142-148, 1992.

F. Rohrer, B. Bohn, T. Brauers, D. Brüning, F. Johnen et al., Characterisation of the photolytic HONO-source in the atmosphere simulation chamber SAPHIR, Atmospheric Chemistry and Physics, vol.5, issue.8, pp.2189-2201, 2005.
URL : https://hal.archives-ouvertes.fr/hal-00295726

A. W. Rollins, A. Kiendler-scharr, J. L. Fry, T. Brauers, S. S. Brown et al., Isoprene oxidation by nitrate radical: alkyl nitrate and secondary organic aerosol yields, Atmos. Chem. Phys, vol.9, pp.6685-6703, 2009.

S. M. Saunders, M. E. Jenkin, R. G. Derwent, M. J. Pilling, R. H. Schwantes et al., Isoprene NO 3 Oxidation Products from the RO 2 + HO 2 Pathway, Protocol for the development of the Master Chemical Mechanism, MCM v3 (Part A): tropospheric degradation of nonaromatic volatile organic compounds, vol.3, pp.407-436, 2001.

N. Sobanski, J. Schuladen, G. Schuster, J. Lelieveld, and J. N. Crowley, A five-channel cavity ring-down spectrometer for the detection of NO 2 , NO 3 , N 2 O 5 , total peroxy nitrates and total alkyl nitrates, Atmos. Meas. Tech, vol.9, pp.5103-5118, 2016.

N. Sobanski, J. Schuladen, G. Schuster, J. Lelieveld, and J. N. Crowley, A five-channel cavity ring-down spectrometer for the detection of NO<sub>2</sub>, NO<sub>3</sub>, N<sub>2</sub>O<sub>5</sub>, total peroxy nitrates and total alkyl nitrates, Atmospheric Measurement Techniques, vol.9, issue.10, pp.5103-5118, 2016.

J. Thieser, G. Schuster, J. Schuladen, G. J. Phillips, A. Reiffs et al., A two-channel thermal dissociation cavity ring-down spectrometer for the detection of ambient NO<sub>2</sub>, RO<sub>2</sub>NO<sub>2</sub> and RONO<sub>2</sub>, Atmospheric Measurement Techniques, vol.9, issue.2, pp.553-576, 2016.

Y. Meeningen, G. Schurgers, R. Rinnan, and T. Holst, BVOC emissions from English oak (Quercus robur) and European beech (Fagus sylvatica) along a latitudinal gradient, Biogeosciences, vol.13, pp.6067-6080, 2016.

S. Vaughan, C. E. Canosa-mas, C. Pfrang, D. E. Shallcross, L. Watson et al., Kinetic studies of reactions of the nitrate radical (NO 3 ) with peroxy radicals (RO 2 ): an indirect source of OH at night?, Phys. Chem. Chem. Phys, vol.8, pp.3749-3760, 2006.

N. L. Wagner, W. P. Dubé, R. A. Washenfelder, C. J. Young, I. B. Pollack et al., Diode laser-based cavity ring-down instrument for NO<sub>3</sub>, N<sub>2</sub>O<sub>5</sub>, NO, NO<sub>2</sub> and O<sub>3</sub> from aircraft, Atmospheric Measurement Techniques, vol.4, issue.6, pp.1227-1240, 2011.

C. Warneke, J. A. De-gouw, P. D. Goldan, W. C. Kuster, E. J. Williams et al., Comparison of daytime and nighttime oxidation of biogenic and anthropogenic VOCs along the New England coast in summer during New England Air Quality Study, vol.109, p.10309, 2002.

R. P. Wayne, I. Barnes, P. Biggs, J. P. Burrows, C. E. Canosamas et al., The Nitrate Radical -Physics, Chemistry, and the Atmosphere, vol.25, pp.1-203, 1991.

P. O. Wennberg, K. H. Bates, J. D. Crounse, L. G. Dodson, R. C. Mcvay et al., Gas-Phase Reactions of Isoprene and Its Major Oxidation Products, Chemical Reviews, vol.118, issue.7, pp.3337-3390, 2018.