V. S. Airapetian, A. Glocer, G. Grono, E. Hébrard, and W. Danchi, Prebiotic chemistry and atmospheric warming of early Earth by an active young Sun, Nature Geoscience, vol.9, issue.6, pp.452-455, 2016.

R. C. Anderson, L. Jandura, A. B. Okon, D. Sunshine, C. Roumeliotis et al., Collecting samples in Gale crater, Mars; an overview of the Mars Science Laboratory sample acquisition, sample processing and handling system, Space Science Reviews, vol.170, issue.1-4, pp.57-75, 2012.

P. D. Archer, H. B. Franz, B. Sutter, R. D. Arevalo, P. Coll et al., Abundances and implications of volatilebearing species from evolved gas analysis of the Rocknest aeolian deposit, Journal of Geophysical Research: Planets, vol.119, pp.237-254, 2014.

C. W. Bale, E. Bélisle, P. Chartrand, S. A. Decterov, G. Eriksson et al., FactSage thermochemical software and databases, Calphad, vol.54, pp.35-53, 2010.

N. Batalha, S. D. Domagal-goldman, R. Ramirez, and J. F. Kasting, Testing the early Mars H 2 -CO 2 greenhouse hypothesis with a 1-D photochemical model, Icarus, vol.258, pp.337-349, 2015.

C. S. Borlina, B. L. Ehlmann, and E. S. Kite, Modeling the thermal and physical evolution of Mount Sharp's sedimentary rocks, Gale crater, Mars: Implications for diagenesis on the MSL Curiosity rover traverse, Journal of Geophysical Research: Planets, vol.120, pp.1396-1414, 2015.

W. F. Bottke and M. D. Norman, The late heavy bombardment, Annual Review of Earth and Planetary Sciences, vol.45, issue.1, pp.619-647, 2017.
URL : https://hal.archives-ouvertes.fr/hal-00632637

T. F. Bristow, R. M. Haberle, D. F. Blake, D. J. Des-marais, J. L. Eigenbrode et al., Low Hesperian pCO 2 constrained from in situ mineralogical analysis at Gale crater, Mars, Proceedings of the National Academy of Sciences of the United States of America, vol.114, pp.2166-2170, 2017.

T. F. Bristow, E. B. Rampe, C. N. Achilles, D. F. Blake, S. J. Chipera et al., Clay mineral diversity and abundance in sedimentary rocks of Gale crater, Mars. Science Advances, vol.4, issue.6, 2018.

M. H. Carr, Recharge of the early atmosphere of Mars by impact-induced release of CO 2, Icarus, vol.79, issue.2, pp.311-327, 1989.

D. C. Catling, M. W. Claire, K. J. Zahnle, R. C. Quinn, B. C. Clark et al., Atmospheric origins of perchlorate on Mars and in the Atacama, Journal of Geophysical Research, vol.115, 2010.

W. L. Chameides, Effect of variable energy input on nitrogen fixation in instantaneous linear discharges, Nature, vol.277, issue.5692, pp.123-124, 1979.

W. L. Chameides, D. H. Stedman, R. R. Dickerson, D. W. Rusch, and R. J. Cicerone, NO x production in lightning, Journal of the Atmospheric Sciences, vol.34, issue.1, pp.143-149, 1977.

W. L. Chameides and J. C. Walker, Rates of fixation by lightning of carbon and nitrogen in possible primitive atmospheres, Origins of Life and Evolution of Biospheres, vol.11, issue.4, pp.291-302, 1981.

R. A. Craddock and R. Greeley, Minimum estimates of the amount and timing of gases released into the Martian atmosphere from volcanic eruptions, Icarus, vol.204, issue.2, pp.512-526, 2009.

L. Do and F. Raulin, Gas chromatography of Titan's atmosphere. I. Analysis of low-molecular weight hydrocarbons and nitriles with a poraplot Q porous polymer coated open-tubular capillary column, Journal of Chromatography, vol.481, issue.01, pp.96751-96753, 1989.

G. E. Ericksen, The Chilean nitrate deposits, American Scientist, vol.71, pp.366-374, 1983.

S. A. Ewing, B. Sutter, J. Owen, K. Nishiizumi, W. Sharp et al., A threshold in soil formation at Earth's aridhyperarid transition, Geochimica et Cosmochimica Acta, vol.70, issue.21, pp.5293-5322, 2006.

C. Freissinet, D. P. Glavin, P. R. Mahaffy, K. E. Miller, J. L. Eigenbrode et al., Organic molecules in the Sheepbed Mudstone, Gale crater, Mars, Journal of Geophysical Research: Planets, vol.120, pp.495-514, 2015.
URL : https://hal.archives-ouvertes.fr/insu-01218165

M. Gagné, J. Bertaux, F. González-galindo, S. M. Melo, F. Montmessin et al., New nitric oxide (NO) nightglow measurements with SPICAM/MEx as a tracer of Mars upper atmosphere circulation and comparison with LMD-MGCM model prediction: Evidence for asymmetric hemispheres, Journal of Geophysical Research: Planets, vol.118, pp.2172-2179, 2013.

D. P. Glavin, C. Freissinet, K. E. Miller, J. L. Eigenbrode, A. E. Brunner et al., Evidence for perchlorates and the origin of chlorinated hydrocarbons detected by SAM at the Rocknest Aeolian deposit in Gale crater, Journal of Geophysical Research: Planets, vol.118, pp.1955-1973, 2013.
URL : https://hal.archives-ouvertes.fr/hal-00868826

R. Gomes, H. F. Levison, K. Tsiganis, and A. Morbidelli, Origin of the cataclysmic late heavy bombardment period of the terrestrial planets, Nature, vol.435, issue.7041, pp.466-469, 2005.
URL : https://hal.archives-ouvertes.fr/hal-00388274

D. O. Gough, Solar interior structure and luminosity variations, Solar Physics, vol.74, issue.1, pp.21-34, 1981.

M. Grott, A. Morschhauser, D. Breuer, and E. Hauber, Volcanic outgassing of CO 2 and H 2 O on Mars, Earth and Planetary Science Letters, vol.308, issue.3-4, pp.391-400, 2011.

J. Grotzinger, S. Gupta, M. Malin, D. Rubin, J. Schieber et al., Deposition, exhumation, and paleoclimate of an ancient lake deposit, Gale crater, Mars. Science, issue.6257, p.350, 2015.

J. P. Grotzinger, D. Y. Sumner, L. Kah, K. Stack, S. Gupta et al., A habitable fluvio-lacustrine environment at Yellowknife Bay, Gale crater, Mars. Science, issue.6169, p.343, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01293840

J. Hanley, V. Chevrier, D. Berget, and R. Adams, Chlorate salts and solutions on Mars, Geophysical Research Letters, vol.39, p.8201, 2012.

W. K. Hartmann, J. Anguita, M. A. De-la-casa, D. C. Berman, and E. V. Ryan, Martian cratering 7: The role of impact gardening, Icarus, vol.149, issue.1, pp.37-53, 2001.

W. K. Hartmann and G. Neukum, Cratering chronology and the evolution of Mars, Space Science Reviews, vol.96, issue.1/4, pp.165-194, 2001.

M. H. Hecht, S. P. Kounaves, R. C. Quinn, S. J. West, S. M. Young et al., Detection of perchlorate and the soluble chemistry of Martian soil at the Phoenix Lander site, Science, vol.325, issue.5936, pp.64-67, 2009.

J. V. Hogancamp, B. Sutter, R. V. Morris, P. D. Archer, D. W. Ming et al., Chlorate/Fe-bearing phase mixtures as a possible source of oxygen and chlorine detected by the Sample Analysis at Mars (SAM) instrument in Gale crater, Mars. Journal of Geophysical Research: Planets, vol.123, pp.2920-2938, 2018.

N. G. Holm, C. Oze, O. Mousis, J. H. Waite, and A. Guilbert-lepoutre, Serpentinization and the formation of H 2 and CH 4 on celestial bodies (planets, moons, comets), Astrobiology, issue.7, pp.587-600, 2015.

J. B. Howard and D. C. Rees, Structural basis of biological nitrogen fixation, Chemical Reviews, issue.7, pp.2965-2982, 1996.

R. Hu, D. M. Kass, B. L. Ehlmann, and Y. L. Yung, Tracing the fate of carbon and the atmospheric evolution of Mars, Nature Communications, vol.6, issue.1, 2015.

B. A. Ivanov, Mars/moon cratering rate ratio estimates, Space Science Reviews, vol.96, issue.1/4, pp.87-104, 2001.

R. E. Johnson and M. Liu, Sputtering of the atmosphere of Mars 1. Collitional dissociation of CO 2, Journal of Geophysical Research, vol.103, issue.E2, pp.3639-3647, 1998.

R. Kahn, The evolution of CO 2 on Mars, Icarus, vol.62, issue.2, pp.175-190, 1985.

E. S. Kite, J. Sneed, D. P. Mayer, and S. A. Wilson, Persistent or repeated surface habitability on Mars during the late HesperianAmazonian, Geophysical Research Letters, vol.44, pp.3991-3999, 2017.

E. S. Kite, J. Williams, A. Lucas, and O. Aharonson, Low palaeopressure of the Martian atmosphere estimated from the size distribution of ancient craters, Nature Geoscience, vol.7, issue.5, pp.335-339, 2014.

V. A. Krasnopolsky and P. D. Feldman, Detection of molecular hydrogen in the atmosphere of Mars, Science, vol.294, issue.5548, pp.1914-1917, 2001.

D. A. Kring and B. A. Cohen, , 2002.

. Ga, Journal of Geophysical Research, vol.107, issue.E2

J. S. Levine, G. L. Gregory, G. A. Harvey, W. E. Howell, W. J. Borucki et al., Production of nitric oxide by lightning on Venus, Geophysical Research Letters, vol.9, issue.8, pp.893-896, 1982.

W. Luo, X. Cang, and A. D. Howard, New Martian valley network volume estimate consistent with ancient ocean and warm and wet climate, Nature Communications, vol.8, p.15766, 2016.

P. R. Mahaffy, C. R. Webster, M. Cabane, P. G. Conrad, P. Coll et al., The Sample Analysis at Mars investigation and instrument suite, Space Science Reviews, vol.170, issue.1-4, pp.401-478, 2012.
URL : https://hal.archives-ouvertes.fr/hal-00694758

P. R. Mahaffy, C. R. Webster, J. C. Stern, A. E. Brunner, S. K. Atreya et al., The imprint of atmospheric evolution in the D/H of Hesperian clay minerals on Mars, Science, vol.347, issue.6220, pp.412-414, 2015.

G. G. Managadze, W. B. Brinckerhoff, and A. E. Chumikov, Molecular synthesis in hypervelocity impact plasmas on the primitive Earth and in interstellar clouds, International Journal of Astrobiology, vol.30, issue.5, pp.217-225, 2003.

R. L. Mancinelli and C. P. Mckay, The evolution of nitrogen cycling, Origins of Life and Evolution of Biospheres, vol.18, issue.4, pp.311-325, 1988.

J. A. Manion, R. E. Huie, R. D. Levin, D. R. Burgess, V. L. Orkin et al., NIST Chemical Kinetics Database, vol.17, pp.20899-8320, 2015.

C. V. Manning, C. P. Mckay, and K. J. Zahnle, The nitrogen cycle on Mars: Impact decomposition of near-surface nitrates as a source for a nitrogen steady state, Icarus, vol.197, issue.1, pp.60-64, 2008.

C. V. Manning, K. J. Zahnle, and C. P. Mckay, Impact processing of nitrogen on early Mars, Icarus, vol.199, issue.2, pp.273-285, 2009.

M. M. Markowitz and D. A. Boryta, The differential thermal analysis of perchlorates. VII. Catalytic decompositions of the alkali metal perchlorates by manganese dioxide, The Journal of Physical Chemistry, vol.69, issue.4, pp.1114-1123, 1965.

C. P. Mckay and W. J. Borucki, Organic synthesis in experimental impact shocks, Science, vol.276, issue.5311, pp.390-392, 1997.

C. P. Mckay and C. R. Stoker, The early environment and its evolution on Mars: Implication for life, Reviews of Geophysics, vol.27, issue.2, pp.189-214, 1989.

S. M. Mclennan, R. B. Anderson, J. F. Bell, . Iii, J. C. Bridges et al., Elemental geochemistry of sedimentary rocks at Yellowknife Bay, Gale crater, Mars. Science, issue.6169, p.343, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01303021

H. J. Melosh and A. M. Vickery, Impact erosion of the primordial atmosphere of Mars, Nature, vol.338, issue.6215, pp.487-489, 1989.

G. Michalski, J. G. Bockheim, C. Kendall, and M. Thiemens, Isotopic composition of Antarctic Dry Valley nitrate: Implications for NO y sources and cycling in Antarctica, Geophysical Research Letters, vol.32, 2005.

K. Mimura, M. Okamoto, T. Nakatsuka, K. Sugitani, and O. Abe, Shock-induced isotope evolution of hydrogen and carbon in meteorites, Geophysical Research Letters, vol.32, 2005.

D. W. Ming, P. D. Archer, D. P. Glavin, J. L. Eigenbrode, H. B. Franz et al., Volatile and organic compositions of sedimentary rocks in Yellowknife Bay, Gale crater, & MSL Science Team, issue.6169, p.343, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01238192

R. V. Morris, D. T. Vaniman, D. F. Blake, R. Gellert, S. J. Chipera et al., Silicic volcanism on Mars evidenced by tridymite in high-SiO 2 sedimentary rock at Gale crater, Proceedings of the National Academy of Sciences of the United States of America, vol.113, pp.7071-7076, 2016.

K. F. Navarro, Síntesis de compuestos nitrogenados por relámpagos en una atmósfera de la Tierra primitiva rica en metano y su impacto en la evolución química. (Bachelor of Science thesis), Retrieved from TESIUNAM, 2014.

R. Navarro-gonzález, C. P. Mckay, and D. Nna-mvondo, A possible nitrogen crisis for Archaean life due to reduced nitrogen fixation by lightning, Nature, vol.412, issue.6842, pp.61-64, 2001.

R. Navarro-gonzález, M. J. Molina, and L. T. Molina, Nitrogen fixation by volcanic lightning in the early Earth, Geophysical Research Letters, vol.25, issue.16, pp.3123-3126, 1998.

R. Navarro-gonzález, J. Stern, B. Sutter, D. Archer, A. Mcadam et al., Possible detection of nitrates on Mars by the Sample Analysis at Mars (SAM) instrument. LPI Contrib, p.2648, 2013.

R. Navarro-gonzález, M. Villagrán-muniz, H. Sobral, L. T. Molina, and M. J. Molina, The physical mechanism of nitric oxide formation in simulated lightning, Geophysical Research Letters, vol.28, issue.20, pp.3867-3870, 2001.

D. Nna-mvondo, R. Navarro-gonzález, C. P. Mckay, P. &. Coll, and F. Raulin, Production of nitrogen oxides by lightning and coronae discharges in simulated early Earth, Venus and Mars environments, Advances in Space Research, vol.27, issue.2, pp.50-53, 2001.

E. Panarella, Theory of laser-induced gas ionization, Foundations of Physics, vol.4, issue.2, pp.227-259, 1974.

L. B. Pham and Ö. Karatekin, Scenarios of atmospheric mass evolution on Mars influenced by asteroid and comet impacts since the late Noachian, Planetary and Space Science, vol.125, pp.1-11, 2016.

J. B. Pollack, J. F. Kasting, S. M. Richardson, and K. Poliakoff, The case for a wet, warm climate on early Mars, Icarus, vol.71, issue.2, pp.90147-90150, 1987.

J. Postgate, Nitrogen fixation, 1996.

M. Rahman and V. Cooray, A study of NO X production in air heated by laser discharges: Effect of energy, wavelength, multiple discharges and pressure, Optics and Laser Technology, vol.40, issue.1, pp.208-214, 2008.

R. M. Ramirez, R. Kopparapu, M. E. Zugger, T. D. Robinson, R. Freedman et al., Warming early Mars with CO 2 and H 2, Nature Geoscience, vol.7, issue.1, pp.59-63, 2014.

E. B. Rampe, D. W. Ming, D. F. Blake, T. F. Bristow, S. J. Chipera et al., Mineralogy of an ancient lacustrine mudstone succession from the Murray formation, Gale crater, Mars. Earth and Planetary Science Letters, vol.471, pp.172-185, 2017.

P. M. Sadler, Sediment accumulation rates and the completeness of stratigraphic sections, The Journal of Geology, vol.89, issue.5, pp.569-584, 1981.

C. Sagan, Reducing greenhouses and temperature history of Earth and Mars, Nature, vol.269, pp.224-226, 1977.

V. A. Samarkin, M. T. Madigan, M. W. Bowles, K. L. Casciotti, J. C. Priscu et al., Abiotic nitrous oxide emission from the hypersaline Don Juan pond in Antarctica, Nature Geoscience, vol.3, issue.5, pp.341-344, 2010.

A. Sasoh, Laser focusing, Experimental methods of shock wave research, vol.9, pp.99-108, 2016.

T. W. Scattergood, C. P. Mckay, W. J. Borucki, L. P. Giver, H. Van-ghyseghem et al., Production of organic compounds in plasmas: A comparison among electric sparks, laser-induced plasmas, and UV light, Icarus, vol.81, issue.2, pp.90061-90065, 1989.

A. Segura and R. Navarro-gonzález, Experimental simulation of early Martian volcanic lightning, Advances in Space Research, vol.27, issue.2, pp.201-206, 2001.

A. Segura and R. Navarro-gonzález, Nitrogen fixation on early Mars by volcanic lightning and other sources, Geophysical Research Letters, vol.32, 2005.

E. Semper, G. J. Michels, and O. Ghigliotto-salas, La Industria del Salitre en Chile. Metalurjia i Sustancias Salinas, vol.52, pp.1-418, 1908.

S. F. Sholes, M. L. Smith, M. W. Claire, K. J. Zahnle, and D. C. Catling, Anoxic atmospheres on early Mars driven by volcanism: Implications for past environments and life, Icarus, vol.290, pp.46-62, 2017.

D. L. Slusher, L. G. Huey, D. J. Tanner, G. Chen, D. D. Davis et al., Measurements of pernitric acid at the South Pole during ISCAT, Geophysical Research Letters, vol.29, issue.21, 2000.

M. L. Smith, M. W. Claire, D. C. Catling, and K. J. Zahnle, The formation of sulfate, nitrate and perchlorate salts in the Martian atmosphere, Icarus, vol.231, pp.51-64, 2014.

H. Sobral, M. Villagrán-muniz, R. Navarro-gonzález, and A. C. Raga, Temporal evolution of the shock wave and hot core air in laser induced plasma, Applied Physics Letters, vol.77, issue.20, pp.3158-3160, 2000.

J. C. Stern, B. Sutter, P. D. Archer, J. L. Eigenbrode, A. C. Mcadam et al., Major volatiles evolved from eolian materials in Gale crater, Geophysical Research Letters, vol.45, issue.19, pp.240-250, 2018.
URL : https://hal.archives-ouvertes.fr/insu-01876721

J. C. Stern, B. Sutter, C. Freissinet, R. Navarro-gonzález, C. P. Mckay et al., Evidence for indigenous nitrogen in sedimentary and aeolian deposits from the Curiosity rover investigations at Gale crater, Mars, Proceedings of the National Academy of Sciences of the United States of America, vol.112, pp.4245-4250, 2015.
URL : https://hal.archives-ouvertes.fr/insu-01149378

J. C. Stern, B. Sutter, W. A. Jackson, R. Navarro-gonzález, C. P. Mckay et al., The nitrate/(per) chlorate relationship on Mars, Geophysical Research Letters, vol.44, pp.2643-2651, 2017.

K. H. Stern, High temperature properties and decomposition of inorganic salts. Part 3. Nitrates and nitrites, Journal of Physical and Chemical Reference Data, vol.1, issue.3, pp.747-772, 1972.

A. Stiepen, S. K. Jain, N. M. Schneider, J. I. Deighan, F. González-galindo et al., Nitric oxide nightglow and Martian mesospheric circulation from MAVEN/IUVS observations and LMD-MGCM predictions, Journal of Geophysical Research: Space Physics, vol.122, pp.5782-5797, 2017.
URL : https://hal.archives-ouvertes.fr/insu-01498483

R. Stribling and S. L. Miller, Energy yields for hydrogen cyanide and formaldehyde syntheses: The HCN and amino acid concentrations in the primitive ocean, Origins of Life and Evolution of Biospheres, vol.17, issue.3-4, pp.261-273, 1987.

R. G. Strom, R. Malhotra, T. Ito, F. Yoshida, and D. A. Kring, The origin of planetary impactors in the inner solar system, Science, vol.309, issue.5742, pp.1847-1850, 2005.

D. P. Summers and B. Khare, Nitrogen fixation on early Mars and other terrestrial planets: Experimental demonstration of abiotic fixation reactions to nitrite and nitrate, Astrobiology, vol.7, issue.2, pp.333-341, 2007.

B. Sutter, J. B. Dalton, S. A. Ewing, R. Amundson, and C. P. Mckay, Terrestrial analogs for interpretation of infrared spectra from the Martian surface and subsurface: Sulfate, nitrate, carbonate, and phyllosilicate-bearing Atacama Desert soils, Journal of Geophysical Research, vol.112, 2007.

B. Sutter, A. C. Mcadam, P. R. Mahaffy, D. W. Ming, K. S. Edgett et al., Evolved gas analyses of sedimentary rocks and eolian sediment in Gale crater, Mars: Results of the Curiosity rover's Sample Analysis at Mars (SAM) instrument from Yellowknife Bay to the Namib Dune, Journal of Geophysical Research, vol.122, pp.2574-2609, 2017.

F. Tian, J. F. Kasting, and K. Zahnle, Revisiting HCN formation in Earth's early atmosphere, Earth and Planetary Science Letters, vol.308, issue.3-4, pp.417-423, 2011.

T. Tomkinson, M. R. Lee, D. F. Mark, and C. L. Smith, Sequestration of Martian CO 2 by mineral carbonation, Nature Communications, vol.4, issue.1, 2013.

D. T. Vaniman, D. L. Bish, D. W. Ming, T. F. Bristow, R. V. Morris et al., Mineralogy of a mudstone at Yellowknife Bay, Gale crater, Mars. Science, issue.6169, p.343, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01303672

P. Von-paris, J. L. Grenfell, H. Rauer, and J. W. Stock, N 2 -associated surface warming on early Mars, Planetary and Space Science, pp.149-154, 2013.

R. Wordsworth, Y. Kalugina, S. Lokshtanov, A. Vigasin, B. Ehlmann et al., Transient reducing greenhouse warming on early Mars, Geophysical Research Letters, vol.44, pp.665-671, 2017.

R. Wordsworth and R. Pierrehumbert, Hydrogen-nitrogen greenhouse warming in Earth's early atmosphere, Science, vol.339, issue.6115, pp.64-67, 2013.

R. D. Wordsworth, The climate of early Mars, Annual Review of Earth and Planetary Sciences, vol.44, issue.1, pp.381-408, 2016.
URL : https://hal.archives-ouvertes.fr/hal-00543306

L. Xiao, J. Huang, P. R. Christensen, R. Greeley, D. A. Williams et al., Ancient volcanism and its implication for thermal evolution of Mars, Earth and Planetary Science Letters, vol.9, pp.323-324, 2012.

L. Y. Yeung, S. Li, I. E. Kohl, J. A. Haslun, N. E. Ostrom et al., Extreme enrichment in atmospheric 15 N 15 N, Science Advances, vol.3, issue.11, 2017.

Y. J. Yung, D. Strobel, T. Y. Kong, and M. B. Mcelroy, Photochemistry of nitrogen in the Martian atmosphere, Icarus, vol.30, issue.1, pp.26-41, 1977.

K. J. Zahnle, Photochemistry of methane and the formation of hydrocyanic acid (HCN) in the Earth's early atmosphere, Journal of Geophysical Research, vol.91, issue.D2, pp.2819-2834, 1986.

Y. A. Zakharov and V. A. Nevostruev, Radiolysis of solid inorganic salts with oxygen-containing anions, Russian Chemical Reviews, vol.37, issue.1, pp.61-73, 1968.

Y. B. Zel'dovitch and Y. O. Raizer, Physics of shock waves and high-temperature hydrodynamic phenomena, 1966.