C. M. Alexander, C. , and G. D. , Did CM and CI chondrites get hotter than we think? The view from Tagish Lake, 76th Meteoritics and Planetary Science. Abstract #5047, 2013.

C. M. Alexander, R. Bowden, M. L. Fogel, and K. T. Howard, Carbonate abundances and isotopic compositions in chondrites, Meteorit. Planet. Sci, vol.50, pp.810-833, 2015.

L. Baker, I. A. Franchi, I. P. Wright, and C. T. Pillinger, The oxygen isotopic composition of water from Tagish Lake: its relationship to low-temperature phases and to other carbonaceous chondrites, Meteorit. Planet. Sci, vol.37, pp.977-985, 2002.

G. K. Benedix, L. A. Leshin, J. Farquhar, T. Jackson, and M. H. Thiemens, Carbonates in CM2 chondrites: constraints on alteration conditions from oxygen isotopic compositions and petrographic observations, Geochim. Cosmochim. Acta, vol.67, pp.1577-1588, 2003.

M. Bourot-denise, B. Zanda, Y. Marrocchi, R. C. Greenwood, S. Pont et al., Paris: the slightly altered, slightly metamorphosed CM that bridges the gap between CMs and COs, 41st Lunar and Planetary Science Conference, 2010.

A. J. Brearley, The action of water, Meteorites and Early Solar System II, pp.587-624, 2006.

L. B. Browning, H. Y. Mcsween, and M. Zolensky, Correlated effects in CM carbonaceous chondrites, Geochim. Cosmochim. Acta, vol.60, pp.2621-2633, 1996.
DOI : 10.1016/0016-7037(96)00121-4

A. S. Burton, D. P. Glavin, J. E. Elsila, J. P. Dworkin, P. Jenniskens et al., The amino acid composition of the Sutter's Mill CM2 carbonaceous chondrite, Meteorit. Planet. Sci, vol.49, pp.2074-2086, 2014.

T. Chacko, D. R. Cole, and J. Horita, Equilibrium oxygen, hydrogen and carbon isotope fractionation factors applicable to geologic systems, pp.1-81, 2001.
DOI : 10.2138/gsrmg.43.1.1

F. J. Ciesla, A Nebular origin for chondritic fine-grained phyllosilicates, Science, vol.299, pp.549-552, 2003.
DOI : 10.1126/science.1079427

R. N. Clayton and T. K. Mayeda, The oxygen isotope record in Murchison and other carbonaceous chondrites, Earth Planet. Sci. Lett, vol.67, pp.151-161, 1984.
DOI : 10.1016/0012-821x(84)90110-9

R. N. Clayton and T. K. Mayeda, Oxygen isotope studies of carbonaceous chondrites, Geochim. Cosmochim. Acta, vol.63, pp.2089-2104, 1999.
DOI : 10.1016/s0016-7037(99)00090-3

R. N. Clayton, J. R. O'neil, and T. K. Mayeda, Oxygen isotope exchange between quartz and water, J. Geophys. Res, vol.77, pp.3057-3067, 1972.
DOI : 10.1029/jb077i017p03057

S. De-leuw, A. E. Rubin, and J. T. Wasson, Carbonates in CM chondrites: complex formational histories and comparison to carbonates in CI chondrites, Meteorit. Planet. Sci, vol.45, pp.513-530, 2010.

P. Ehrenfreund, M. P. Bernstein, J. P. Dworkin, S. A. Sandford, and L. J. Allamandola, The photostability of amino acids in space, Astrophys. J, vol.550, pp.95-99, 2001.

W. Fujiya, N. Sugiura, Y. Marrocchi, N. Takahata, P. Hoppe et al., Comprehensive study of carbon and oxygen isotopic compositions, trace element abundances, and cathodoluminescence intensities of calcite in the Murchison CM chondrite, Geochim. Cosmochim. Acta, vol.161, pp.101-117, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01769679

M. Gounelle, C. Engrand, M. Maurette, G. Kurat, K. D. Mckeegan et al., Small Antarctic micrometeorites: a mineralogical and in situ oxygen study, Meteorit. Planet. Sci, vol.40, pp.917-932, 2005.

W. Guo and J. M. Eiler, Temperatures of aqueous alteration and evidence for methane generation on the parent bodies of the CM chondrites, Geochim. Cosmochim. Acta, vol.71, pp.5565-5575, 2007.

R. H. Hewins, M. Bourot-denise, B. Zanda, H. Leroux, J. A. Barrat et al., The Paris meteorite, the least altered CM chondrite so far, Geochim. Cosmochim. Acta, vol.124, pp.190-222, 2014.
DOI : 10.1016/j.gca.2013.09.014

URL : https://hal.archives-ouvertes.fr/insu-00915172

M. Horstmann, C. Vollmer, M. I. Barth, M. Chaussidon, A. Gurenko et al., Tracking aqueous alteration of CM chondrites-insights from in situ oxygen isotope measurements of calcite, Lunar and Planetary Science Conference. Abstract #1761, 2014.

C. A. Johnson and M. Prinz, Carbonate compositions in CM and CI chondrites and implications for aqueous alteration, Geochim. Cosmochim. Acta, vol.57, pp.2843-2852, 1993.
DOI : 10.1016/0016-7037(93)90393-b

S. T. Kim and J. R. O'neil, Equilibrium and nonequilibrium oxygen isotope effects in synthetic carbonates, Geochim. Cosmochim. Acta, vol.61, pp.3461-3475, 1997.
DOI : 10.1016/s0016-7037(97)00169-5

M. Kuga, B. Marty, Y. Marrocchi, and L. Tissandier, Synthesis of refractory organic matter in the ionized gas phase of the Solar Nebula, Proc. Natl. Acad. Sci. USA, vol.112, pp.7129-7134, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01346065

L. Guillou, C. Dohmen, R. Rogalla, D. Müller, T. Vollmer et al., New experimental approach to study aqueous alteration of amorphous silicates at low reaction rates, Chem. Geol, vol.412, pp.179-192, 2015.

L. Guillou, C. Rouzaud, J. Bonal, L. Quirico, E. Derenne et al., High resolution TEM of chondritic carbonaceous matter: metamorphic evolution and heterogeneity, Meteorit. Planet. Sci, vol.47, pp.345-362, 2012.
URL : https://hal.archives-ouvertes.fr/hal-01194743

M. R. Lee, P. Lindgren, and M. R. Sofe, Aragonite, breunnerite, calcite and dolomite in the CM carbonaceous chondrites: high fidelity recorders of progressive parent body aqueous alteration, Geochim. Cosmochim. Acta, vol.144, pp.126-156, 2014.

M. R. Lee, M. R. Sofe, P. Lindgren, N. A. Starkey, and I. A. Franchi, The oxygen isotope evolution of parent body aqueous solutions as recorded by multiple carbonate generations in the Lonewolf Nunataks 94101 CM2 carbonaceous chondrite, Geochim. Cosmochim. Acta, vol.121, pp.452-466, 2013.

H. Leroux, P. Cuvillier, B. Zanda, and R. H. Hewins, GEMS-like material in the matrix of the Paris meteorite and the early stages of alteration of CM chondrites, Geochim. Cosmochim. Acta, vol.170, pp.1-19, 2015.

Y. Marrocchi, M. Gounelle, I. Blanchard, F. Caste, and A. T. Kearsley, The Paris CM chondrite: secondary minerals and asteroidal processing, Meteorit. Planet. Sci, vol.49, pp.1232-1249, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01053040

B. Marty, G. Avice, Y. Sano, K. Altwegg, H. Balsiger et al., gases) on Earth and Mars in light of recent results from the ROSETTA cometary mission, Origins of volatile elements, vol.441, pp.91-102, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01345988

Y. Matsuhisa, J. R. Goldsmith, and R. N. Clayton, Oxygen isotopic fractionation in the system quartz-albite-anorthite-water, Geochim. Cosmochim. Acta, vol.43, pp.1131-1140, 1979.

I. Pignatelli, Y. Marrocchi, L. G. Vacher, R. Delon, and M. Gounelle, Multiple precursors of secondary mineralogical assemblages in CM chondrites, Meteorit. Planet. Sci, vol.51, pp.785-805, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01772661

A. S. Rivkin, E. S. Howell, F. Vilas, and L. A. Lebofsky, Hydrated minerals on asteroids: the astronomical record, Asteroids III, pp.235-253, 2002.

C. Rollion-bard and J. Marin-carbonne, Determination of SIMS matrix effects on oxygen isotopic compositions in carbonates, J. Anal. At. Spectrom, vol.26, pp.1285-1289, 2011.

A. E. Rubin, An American on Paris: extent of aqueous alteration of a CM chondrite and the petrography of its refractory and amoeboid olivine inclusions, Meteorit. Planet. Sci, vol.50, pp.1595-1612, 2015.

A. E. Rubin, J. M. Trigo-rodriguez, H. Huber, and J. T. Wasson, Progressive aqueous alteration of CM carbonaceous chondrites, Geochim. Cosmochim. Acta, vol.71, pp.2361-2382, 2007.

M. Tyra, A. Brearley, and Y. Guan, Episodic carbonate precipitation in the CM chondrite ALH 84049: an ion microprobe analysis of O and C isotopes, Geochim. Cosmochim. Acta, vol.175, pp.195-207, 2016.

M. A. Tyra, J. Farquhar, Y. Guan, and L. A. Leshin, An oxygen isotope dichotomy in CM2 chondritic carbonates: a SIMS approach, Geochim. Cosmochim. Acta, vol.77, pp.383-395, 2012.

L. G. Vacher, Y. Marrocchi, M. J. Verdier-paoletti, J. Villeneuve, and M. Gounelle, Inward radial mixing of interstellar water in the solar protoplanetary disk. Astrophys, J. Lett, vol.827, pp.1-6, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01367391

M. E. Zolensky, R. J. Bodnar, E. K. Gibson, L. E. Niyquist, Y. Resse et al., Asteroidal water within fluid inclusion-bearing halite in an H5 chondrite, Monahans. Science, vol.285, pp.1377-1379, 1999.

M. E. Zolensky, D. W. Mittlefehldt, M. E. Lipshutz, M. Wang, R. N. Clayton et al., terme en menant des analyses sur des carbonates de calcium et des dolomites de nos 9 CM étudiées dans notre premier projet. Cependant, d'importants soucis techniques ont empêché le bon déroulement cette session et seulement 11.5. DATATION RELATIVE Figure 11, Geochim. Cosmochim. Acta, vol.61, pp.5099-5115, 1997.

C. M. Alexander, R. O'd.-;-bowden, M. L. Fogel, H. , and K. T. , Carbonate abundances and isotopic compositions in chondrites, Meteoritics & Planetary Science, vol.50, issue.4, pp.810-833, 2015.

C. M. Alexander, L. R. O'd.-;-nittler, J. Davidson, and F. J. Ciesla, Measuring the level of interstellar inheritance in the solar protoplanetary disk, Meteoritics & Planetary Science, p.37, 2017.

P. André, J. Di-francesco, D. Ward-thompson, S. Inutsuka, R. E. Pudritz et al., From Filamentary Networks to Dense Cores in Molecular Clouds : Toward a New Paradigm for Star Formation, Protostars and Planets VI, pp.27-51, 2014.

L. Baker, I. A. Franchi, I. P. Wright, and C. T. Pillinger, The oxygen isotopic composition of water from Tagish Lake : Its relationship to low-temperature phases and to other carbonaceous chondrites, Meteoritics & Planetary Science, vol.37, issue.7, pp.977-985, 2002.

G. K. Benedix, L. A. Leshin, J. Farquhar, T. Jackson, and M. H. Thiemens, Carbonates in CM2 chondrites : Constraints on alteration conditions from oxygen isotopic compositions and petrographic observations. Geochemica et Cosmochemica Acta, vol.67, pp.1577-1588, 2003.

A. Bischoff, E. R. Scott, K. Metzler, and C. A. Goodrich, Nature and origins of meteoritic breccias. Meteorites and the early solar system II, pp.679-712, 2006.

B. Bitsch, M. Lambrechts, J. , and A. , The growth of planets by pebble accretion in evolving protoplanetary discs, Astronomy & Astrophysics, vol.582, p.112, 2015.

M. Bizzarro, J. Baker, H. Haack, and K. L. Lundgaard, Rapid timescales for accretion and melting of differentiated planetesimals inferred from 26 Al-26 Mg chronometry, The Astrophysical Journal Letters, vol.632, issue.1, p.41, 2005.

P. A. Bland, G. Cressey, and O. N. Menzies, Modal mineralogy of carbonaceous chondrites by X-ray diffraction and Mössbauer spectroscopy, Meteoritics & Planetary Science, vol.39, issue.1, p.22, 2004.

P. A. Bland, M. D. Jackson, R. F. Coker, B. A. Cohen, J. B. Webber et al., Why aqueous alteration in asteroids was isochemical : High porosity = high permeability, Earth and Planetary Science Letters, vol.287, issue.3, pp.559-568, 2009.

P. Boehnke and T. M. Harrison, Illusory late heavy bombardments, Proceedings of the National Academy of Sciences, vol.113, issue.39, pp.10802-10806, 2016.

A. P. Boss and F. J. Ciesla, The solar nebula, pp.37-53, 2014.

J. W. Bottke, D. Vokrouhlick`vokrouhlick`y, D. P. Rubincam, and D. Nesvorn`nesvorn`y, The Yarkovsky and YORP effects : Implications for asteroid dynamics, Annual Review of Earth and Planetary Sciences, vol.34, pp.157-191, 2006.

W. F. Bottke and M. D. Norman, The Late Heavy Bombardment, Annual Review of Earth and Planetary Sciences, issue.0, 2017.
URL : https://hal.archives-ouvertes.fr/hal-00632637

M. Bourot-denise, B. Zanda, Y. Marrocchi, R. C. Greenwood, S. Pont et al., The slightly altered, slightly metamorphosed CM that bridges the gap between CMs and COs, p.16, 2010.

A. J. Brearley, Meteorites and the early solar system II, vol.1, pp.584-624, 2006.

A. J. Brearley, The role of microchemical environments in the alteration of CM carbonaceous chondrites, 37th Annual Lunar and Planetary Science Conference, vol.37, 2006.

D. T. Britt and G. J. Consolmagno, Stony meteorite porosities and densities : A review of the data through, Meteoritics & Planetary Science, vol.38, issue.8, p.22, 2001.

L. B. Browning, H. Y. Mcsween, and M. E. Zolensky, Correlated alteration effects in CM carbonaceous chondrites, Geochimica et Cosmochimica Acta, vol.60, issue.14, pp.2621-2633, 1996.

A. Buob, The system CaCO 3-MgCO 3 : experiments and thermodynamic modeling of the trigonal and orthorhombic solid solutions at high pressure and teperature, p.152, 2003.

T. H. Burbine and . Asteroids, , vol.1, pp.365-415, 2014.

S. R. Chesley, S. J. Ostro, D. Vokrouhlick`vokrouhlick`y, D. ?apek, J. D. Giorgini et al., Direct detection of the Yarkovsky effect by radar ranging to asteroid 6489 Golevka, Science, vol.302, issue.5651, pp.1739-1742, 2003.

J. Chokai, M. Zolensky, L. Le, K. Nakamura, T. Mikouchi et al., Aqueous alteration mineralogy in CM carbonaceous chondrites, Lunar and Planetary Science Conference, vol.35, p.48, 2004.

F. J. Ciesla, D. S. Lauretta, B. A. Cohen, and L. L. Hood, A nebular origin for chondritic fine-grained phyllosilicates, Science, vol.299, issue.5606, p.22, 2003.

R. N. Clayton, Oxygen isotopes in meteorites, Annual Review of Earth and Planetary Sciences, vol.21, issue.1, pp.115-149, 1993.

R. N. Clayton, Solar System : Self-shielding in the solar nebula, Nature, vol.415, issue.6874, p.39, 2002.

R. N. Clayton and T. K. Mayeda, The oxygen isotope record in Murchison and other carbonaceous chondrites, Earth and Planetary Science Letters, vol.67, issue.2, pp.151-161, 1984.

R. N. Clayton and T. K. Mayeda, Oxygen isotope studies of carbonaceous chondrites, Geochimica et Cosmochimica Acta, vol.63, issue.13, pp.2089-2104, 1999.

R. N. Clayton, L. Grossman, and T. K. Mayeda, A component of primitive nuclear composition in carbonaceous meteorites, Science, vol.182, issue.4111, pp.485-488, 1973.

C. D. Coath, R. C. Steele, and W. F. Lunnon, Statistical bias in isotope ratios, Journal of Analytical Atomic Spectrometry, vol.28, issue.1, pp.52-58, 2013.

S. J. Consolmagno and D. T. Britt, The density and porosity of meteorites from the Vatican collection, Meteoritics & Planetary Science, vol.33, issue.6, p.22, 1998.

C. M. Corrigan, M. E. Zolensky, J. Dahl, M. Long, J. Weir et al., The porosity and permeability of chondritic meteorites and interplanetary dust particles, Meteoritics & Planetary Science, vol.32, issue.4, p.23, 1997.

J. N. Cuzzi, R. C. Hogan, and K. Shariff, Toward planetesimals : Dense chondrule clumps in the protoplanetary nebula, The Astrophysical Journal, vol.687, issue.2, p.1432, 2008.

J. N. Cuzzi, R. C. Hogan, and W. F. Bottke, Towards initial mass functions for asteroids and Kuiper Belt Objects, Icarus, vol.208, issue.2, pp.518-538, 2010.

E. Darque-ceretti, H. Migeon, and M. Aucouturier, Émission ionique secondaire SIMS : Principes et appareillages. Techniques de l'ingénieur. Analyse et caractérisation, vol.12, pp.2618-2619, 1998.

A. M. Davis and K. D. Mckeegan, Short-lived radionuclides and early solar system chronology, p.41, 2014.

T. M. Davison, G. S. Collins, and F. J. Ciesla, Numerical modelling of heating in porous planetesimal collisions, Icarus, vol.208, issue.1, p.16, 2010.

T. M. Davison, F. J. Ciesla, C. , and G. S. , Post-impact thermal evolution of porous planetesimals, Geochimica et Cosmochimica Acta, vol.95, p.16, 2012.

S. De-leuw, A. E. Rubin, A. K. Schmitt, and J. T. Wasson, 53 Mn-53 Cr systematics of carbonates in CM chondrites : Implications for the timing and duration of aqueous alteration, Geochimica et Cosmochimica Acta, vol.73, issue.24, pp.7433-7442, 2009.

E. Deloule, C. France-lanord, A. , and F. , D/H analysis of minerals by ion probe, vol.3, pp.53-62, 1991.

F. E. Demeo and B. Carry, Solar system evolution from compositional mapping of the asteroid belt, Nature, vol.505, issue.7485, pp.629-634, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01019270

P. M. Doyle, K. Jogo, K. Nagashima, G. R. Huss, and A. N. Krot, Mn-Cr relative sensitivity factor in ferromagnesian olivines defined for SIMS measurements with a Cameca ims-1280 ion microprobe : Implications for dating secondary fayalite, Geochimica et Cosmochimica Acta, vol.174, pp.102-121, 2016.

W. Eckstein, Sputtering yields Sputtering by Particle Bombardment : Experiments and Computer Calculations from Threshold to MeV Energies ed R Behrisch and W Eckstein, p.53, 2007.

J. M. Eiler, C. Graham, and J. W. Valley, SIMS analysis of oxygen isotopes : matrix effects in complex minerals and glasses, Chemical Geology, vol.138, issue.3, pp.221-244, 1997.

M. Endress, E. Zinner, and A. Bischoff, Early aqueous activity on primitive meteorite parent bodies, Nature, vol.379, issue.6567, pp.701-703, 1996.

J. R. Farver, Oxygen self-diffusion in calcite : dependence on temperature and water fugacity, Earth and Planetary Science Letters, vol.121, issue.3-4, pp.575-587, 1994.

W. Fujiya, N. Sugiura, H. Hotta, K. Ichimura, and Y. Sano, Evidence for the late formation of hydrous asteroids from young meteoritic carbonates, Nature communications, vol.3, p.24, 2012.

L. A. Garvie, L. P. Knauth, M. , and M. A. , Sedimentary laminations in the Isheyevo (CH/CBb) carbonaceous chondrite formed by gentle impact-plume sweep-up, Icarus, vol.292, p.14, 2017.

I. Gilmour, Structural and isotopic analysis of organic matter in carbonaceous chondrites, p.16, 2005.

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, pp.466-469, 2005.
URL : https://hal.archives-ouvertes.fr/hal-00388274

M. Gounelle, The asteroid-comet continuum : In search of lost primitivity, Elements, vol.7, issue.1, p.15, 2011.

M. Gounelle, P. Spurn`spurn`y, and P. A. Bland, The orbit and atmospheric trajectory of the Orgueil meteorite from historical records, Meteoritics & Planetary Science, vol.41, issue.1, p.15, 2006.

M. Gounelle, A. Meibom, P. Hennebelle, and S. Inutsuka, Supernova propagation and cloud enrichment : A new model for the origin of 60Fe in the early solar system, The Astrophysical Journal Letters, vol.694, issue.1, p.41, 2009.

R. C. Greenwood, I. A. Franchi, A. T. Kearsley, A. , and O. , The relationship between CK and CV chondrites, Geochimica et Cosmochimica Acta, vol.74, issue.5, p.15, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00474633

W. Guo and J. M. Eiler, Temperatures of aqueous alteration and evidence for methane generation on the parent bodies of the CM chondrites. Geochimica et Cosmochimica Acta, vol.71, p.83, 2007.

H. Haack, R. Michelsen, G. Stober, D. Keuer, W. Singer et al., CM Chondrites from Comets ?-New Constraints from the Orbit of the Maribo CM Chondrite Fall. LPI Contributions, p.15, 1639.

R. H. Hewins, M. Bourot-denise, B. Zanda, H. Leroux, J. Barrat et al., The paris meteorite, the least altered cm chondrite so far, Geochimica et Cosmochimica Acta, vol.124, p.16, 2014.
URL : https://hal.archives-ouvertes.fr/insu-00915172

C. M. Hohenberg, O. Pravdivtseva, and A. Meshik, Reexamination of anomalous I-Xe ages : Orgueil and Murchison magnetites and Allegan feldspar, Geochimica et Cosmochimica Acta, vol.64, issue.24, p.24, 2000.

P. Hoppe, D. Macdougall, and G. W. Lugmair, High spatial resolution ion microprobe measurements refine chronology of carbonate formation in Orgueil. Meteoritics & Planetary Science, vol.42, pp.1309-1320, 2007.

J. Horita, Oxygen and carbon isotope fractionation in the system dolomite-waterCO 2 to elevated temperatures, Geochimica et Cosmochimica Acta, vol.129, pp.111-124, 2014.

K. T. Howard, C. M. Alexander, and . O'd,

D. L. Schrader and K. A. Dyl, Classification of hydrous meteorites (CR, CM and C2 ungrouped) by phyllosilicate fraction : PSD-XRD modal mineralogy and planetesimal environments. Geochimica et Cosmochimica Acta, vol.149, pp.206-222, 2014.

C. E. Jilly, G. R. Huss, and K. Nagashima, Mn-Cr dating of secondary carbonates in CR chondrites, Lunar and Planetary Science Conference, vol.44, p.24, 2013.

C. E. Jilly, G. R. Huss, A. N. Krot, K. Nagashima, Q. Yin et al., 53 Mn53 Cr dating of aqueously formed carbonates in the CM2 lithology of the Sutter's Mill carbonaceous chondrite, Meteoritics & Planetary Science, vol.49, issue.11, pp.2104-2117, 2014.

K. Jogo, T. Nakamura, M. Ito, S. Wakita, M. Y. Zolotov et al., Mn-Cr ages and formation conditions of fayalite in CV3 carbonaceous chondrites : Constraints on the accretion ages of chondritic asteroids, Geochimica et Cosmochimica Acta, vol.199, pp.58-74, 2017.

A. Johansen, H. Klahr, and T. Henning, High-resolution simulations of planetesimal formation in turbulent protoplanetary discs, Astronomy & Astrophysics, vol.529, p.62, 2011.

G. W. Kallemeyn, A. E. Rubin, and J. T. Wasson, The compositional classification of chondrites : V. The Karoonda (CK) group of carbonaceous chondrites, Geochimica et Cosmochimica Acta, vol.55, issue.3, p.13, 1991.

F. Kemper, W. J. Vriend, and A. G. Tielens, The Absence of Crystalline Silicates in the Diffuse Interstellar Medium, Astrophysical Journal, vol.609, pp.826-837, 2004.

A. J. King, P. F. Schofield, R. , and S. S. , Thermal Alteration of CI and CM Chondrites : Mineralogical Changes and Metamorphic Temperatures, LPI Contributions, p.16, 1856.

A. J. King, P. F. Schofield, R. , and S. S. , Type 1 aqueous alteration in cm carbonaceous chondrites : Implications for the evolution of water

, Meteoritics & Planetary Science, 2017.

K. Kvenvolden, J. Lawless, K. Pering, E. Peterson, J. Flores et al., Evidence for extraterrestrial amino-acids and hydrocarbons in the Murchison meteorite, p.15, 1970.

C. J. Lada, Stellar multiplicity and the initial mass function : most stars are single, The Astrophysical Journal Letters, vol.640, issue.1, p.63, 2006.

L. Guillou, C. Dohmen, R. Rogalla, D. Müller, T. Vollmer et al., New experimental approach to study aqueous alteration of amorphous silicates at low reaction rates, Chemical Geology, vol.412, p.13, 2015.

M. R. Lee, P. Lindgren, M. R. Sofe, C. M. Alexander, W. O'd et al., Extended chronologies of aqueous alteration in the CM2 carbonaceous chondrites : Evidence from carbonates in Queen Alexandra Range 93005, Geochimica et Cosmochimica Acta, vol.92, pp.148-169, 2012.

M. R. Lee, M. R. Sofe, P. Lindgren, N. A. Starkey, and I. A. Franchi, The oxygen isotope evolution of parent body aqueous solutions as recorded by multiple carbonate generations in the Lonewolf Nunataks 94101 CM2 carbonaceous chondrite, Geochimica et Cosmochimica Acta, vol.121, pp.452-466, 2013.

M. R. Lee, P. Lindgren, and M. R. Sofe, Aragonite, breunnerite, calcite and dolomite in the CM carbonaceous chondrites : High fidelity recorders of progressive parent body aqueous alteration, Geochimica et Cosmochimica Acta, vol.144, pp.126-156, 2014.

M. R. Lee, P. Lindgren, A. J. King, R. C. Greenwood, I. A. Franchi et al., Elephant Moraine 96029, a very mildly aqueously altered and heated CM carbonaceous chondrite : implications for the drivers of parent body processing, Geochimica et Cosmochimica Acta, vol.187, p.16, 2016.

H. Leroux, P. Cuvillier, B. Zanda, and R. H. Hewins, GEMS-like material in the matrix of the Paris meteorite and the early stages of alteration of CM chondrites, Geochimica et Cosmochimica Acta, vol.170, p.13, 2015.

H. F. Levison,

K. A. Kretke, . Walsh, J. Kevin, . Bottke, and F. William, Growing the terrestrial planets from the gradual accumulation of submeter-sized objects, Proceedings of the National Academy of Sciences, vol.112, issue.46, pp.14180-14185, 2015.

R. S. Lewis, A. , and E. , Condensation time of the solar nebula from extinct 129 I in primitive meteorites, Proceedings of the National Academy of Sciences, vol.72, p.24, 1975.

P. Lindgren, M. R. Lee, M. R. Sofe, and M. E. Zolensky, Clasts in the CM2 carbonaceous chondrite Lonewolf Nunataks 94101 : evidence for aqueous alteration prior to complex mixing, Meteoritics & Planetary Science, vol.48, issue.6, p.99, 2013.

K. Lodders, Solar System Abundances and Condensation Temperatures of the Elements, Astrophysical Journal, vol.591, pp.1220-1247, 2003.

K. Lodders and R. Osborne, Perspectives on the comet-asteroid-meteorite link, Space Science Reviews, vol.90, issue.1-2, p.15, 1999.

Y. Marrocchi, M. Gounelle, I. Blanchard, F. Caste, and A. T. Kearsley, The Paris CM chondrite : Secondary minerals and asteroidal processing, Meteoritics & Planetary Science, vol.49, issue.7, p.16, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01053040

Z. Martins, Organic chemistry of carbonaceous meteorites, Elements, vol.7, issue.1, p.16, 2011.

B. Mason, The carbonaceous chondrites, Space Science Reviews, vol.1, issue.4, p.98, 1963.

K. D. Mckeegan, A. P. Kallio, V. S. Heber, G. Jarzebinski, P. H. Mao et al., The oxygen isotopic composition of the Sun inferred from captured solar wind, Science, vol.332, issue.6037, p.38, 2011.

S. J. Mckibbin, T. R. Ireland, Y. Amelin, P. Holden, and N. Sugiura, A reevaluation of the Mn-Cr systematics of olivine from the angrite meteorite D'Orbigny using Secondary Ion Mass Spectrometry, Geochimica et Cosmochimica Acta, vol.123, pp.181-194, 2013.

K. Metzler, A. Bischoff, and D. Stöffler, Accretionary dust mantles in CM chondrites : Evidence for solar nebula processes, Geochimica et Cosmochimica Acta, vol.56, issue.7, pp.2873-2897, 1992.

K. Metzler, Formation of accretionary dust mantles in the solar nebula : Evidence from preirradiated olivines in CM chondrites, Meteoritics & Planetary Science, vol.39, issue.8, p.97, 2004.

D. W. Mittlefehldt and . Achondrites, , p.12, 2014.

A. Morbidelli and S. N. Raymond, Challenges in planet formation, Journal of Geophysical Research : Planets, vol.121, issue.10, pp.1962-1980, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01387890

A. Morbidelli, H. F. Levison, K. Tsiganis, and R. Gomes, Chaotic capture of Jupiter's Trojan asteroids in the early Solar System, Nature, vol.435, pp.462-465, 2005.

J. W. Morse, Q. Wang, and M. Y. Tsio, Influences of temperature and Mg :Ca ratio on CaCO 3 precipitates from seawater, Geology, vol.25, issue.1, pp.85-87, 1997.

J. W. Morse, R. S. Arvidson, L. , and A. , Calcium carbonate formation and dissolution, Chemical reviews, vol.107, issue.2, pp.342-381, 2007.

T. Nakamura, Post-hydration thermal metamorphism of carbonaceous chondrites, Journal of Mineralogical and Petrological Sciences, vol.100, issue.6, p.16, 2005.

T. Nakamura, Yamato 793321 CM chondrite : Dehydrated regolith material of a hydrous asteroid, Earth and Planetary Science Letters, vol.242, issue.1, p.16, 2006.

S. Niemeyer and A. Zaikowski, I-Xe age and trapped Xe components of the Murray (C-2) chondrite. Earth and Planetary Science Letters, vol.48, p.24, 1980.

R. C. Ogliore, G. R. Huss, and K. Nagashima, Ratio estimation in SIMS analysis. Nuclear instruments and methods in physics research section B : beam interactions with materials and atoms, vol.269, pp.1910-1918, 2011.

S. Ono and K. Mibe, Influence of pressure and temperature on the electrical conductivity of dolomite, Physics and Chemistry of Minerals, vol.42, issue.9, pp.773-779, 2015.

C. W. Ormel and H. H. Klahr, The effect of gas drag on the growth of protoplanetsAnalytical expressions for the accretion of small bodies in laminar disks, Astronomy & Astrophysics, vol.520, p.43, 2010.

J. Palguta, G. Schubert, T. , and B. J. , Fluid flow and chemical alteration in carbonaceous chondrite parent bodies, Earth and Planetary Science Letters, vol.296, issue.3, p.22, 2010.

E. E. Palmer and D. S. Lauretta, Aqueous alteration of kamacite in CM chondrites, Meteoritics & Planetary Science, vol.46, issue.10, pp.1587-1607, 2011.

M. Petitat, Y. Marrocchi, K. D. Mckeegan, S. Mostefaoui, A. Meibom et al., 53 Mn-53 Cr ages of Kaidun carbonates, Meteoritics & Planetary Science, vol.46, issue.2, pp.275-283, 2011.

I. Pignatelli, Y. Marrocchi, L. Vacher, R. Delon, and M. Gounelle, Multiple precursors of secondary mineralogical assemblages in CM chondrites
URL : https://hal.archives-ouvertes.fr/hal-01772661

, Meteoritics & Planetary Science, vol.51, issue.4, pp.785-805, 2016.

A. Putnis and H. Austrheim, Fluid-induced processes : metasomatism and metamorphism, Geofluids, vol.10, issue.1-2, p.18, 2010.

A. Putnis and C. V. Putnis, The mechanism of reequilibration of solids in the presence of a fluid phase, Journal of Solid State Chemistry, vol.180, issue.5, p.18, 2007.

B. Reipurth, Disintegrating multiple systems in early stellar evolution, The Astronomical Journal, vol.120, issue.6, p.3177, 2000.

L. R. Riciputi, H. Y. Mcsween, C. A. Johnson, and M. Prinz, Minor and trace element concentrations in carbonates of carbonaceous chondrites, and implications for the compositions of coexisting fluids, Geochimica et Cosmochimica Acta, vol.58, issue.4, pp.1343-1351, 1994.

C. Rollion-bard and J. Marin-carbonne, Determination of SIMS matrix effects on oxygen isotopic compositions in carbonates, Journal of Analytical Atomic Spectrometry, vol.26, issue.6, pp.1285-1289, 2011.

C. Rollion-bard, D. Mangin, and M. Champenois, Development and application of oxygen and carbon isotopic measurements of biogenic carbonates by ion microprobe, Geostandards and Geoanalytical Research, vol.31, issue.1, p.169, 2007.

K. Ros and A. Johansen, Ice condensation as a planet formation mechanism, Astronomy & Astrophysics, vol.552, p.137, 2013.

A. E. Rubin, J. M. Trigo-rodriguez, H. Huber, and J. T. Wasson, Progressive aqueous alteration of CM carbonaceous chondrites, Geochimica et Cosmochimica Acta, vol.71, issue.9, pp.2361-2382, 2007.

E. Ruiz-agudo, C. V. Putnis, P. , and A. , Coupled dissolution and precipitation at mineral-fluid interfaces, Chemical Geology, vol.383, p.18, 2014.

A. Scherstén, T. Elliott, C. Hawkesworth, S. Russell, and J. Masarik, Hf-W evidence for rapid differentiation of iron meteorite parent bodies. Earth and Planetary, Science Letters, vol.241, issue.3, pp.530-542, 2006.

D. L. Schrader, J. Davidson, and . Cm, A common parent body or asteroidal neighbors ? Insights from chondrule silicates. Geochimica et Cosmochimica Acta, p.15, 2017.

E. R. Scott and A. N. Krot, Chondrites and Their Components, pp.65-137, 2014.

R. C. Steele, V. S. Heber, and K. D. Mckeegan, Matrix effects on the relative sensitivity factors for manganese and chromium during ion microprobe analysis of carbonate : Implications for early Solar System chronology, Geochimica et Cosmochimica Acta, vol.201, pp.245-259, 2017.

N. Sugiura, N. S. Brar, D. W. Strangway, and T. Matsui, Degassing of meteorite parent bodies, Journal of Geophysical Research : Solid Earth, vol.89, issue.S02, 1984.

N. Sugiura, K. Ichimura, W. Fujiya, and N. Takahata, Mn/Cr relative sensitivity factors for synthetic calcium carbonate measured with a NanoSIMS ion microprobe, Geochemical Journal, vol.44, issue.3, pp.11-16, 2010.

K. Suito, J. Namba, T. Horikawa, Y. Taniguchi, N. Sakurai et al., Phase relations of CaCO 3 at high pressure and high temperature, American Mineralogist, vol.86, issue.9, pp.997-1002, 2001.

M. H. Thiemens, History and applications of mass-independent isotope effects, Annual Review of Earth and Planetary Sciences, vol.34, pp.217-262, 2006.

D. J. Tholen, Asteroid taxonomy from cluster analysis of photometry, vol.8, 1984.

L. Tissandier, R. , and C. , Influence of glass composition on secondary ion mass spectrometry instrumental mass fractionation for Si and Ca isotopic analyses, Rapid Communications in Mass Spectrometry, vol.31, issue.4, p.182, 2017.

E. Tonui, M. Zolensky, T. Hiroi, T. Nakamura, M. E. Lipschutz et al., Petrographic, chemical and spectroscopic evidence for thermal metamorphism in carbonaceous chondrites I : CI and CM chondrites, Geochimica et Cosmochimica Acta, vol.126, p.16, 2014.

K. Tsiganis, R. Gomes, A. Morbidelli, and H. F. Levison, Origin of the orbital architecture of the giant planets of the Solar System, Nature, vol.435, pp.459-461, 2005.
URL : https://hal.archives-ouvertes.fr/hal-00390820

M. A. Tyra, J. Farquhar, Y. Guan, and L. A. Leshin, An oxygen isotope dichotomy in CM2 chondritic carbonates-A SIMS approach, Geochimica et Cosmochimica Acta, vol.77, pp.383-395, 2012.

H. C. Urey, The thermodynamic properties of isotopic substances, Journal of the Chemical Society, vol.35, pp.562-581, 1947.

L. G. Vacher, Y. Marrocchi, M. J. Verdier-paoletti, J. Villeneuve, G. et al., Inward Radial Mixing of Interstellar Water Ices in the Solar Protoplanetary Disk, The Astrophysical Journal Letters, vol.827, issue.1, p.1, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01367391

L. G. Vacher, Y. Marrocchi, J. Villeneuve, M. J. Verdier-paoletti, G. et al., Petrographic and C & O isotopic characteristics of the earliest stages of aqueous alteration of CM chondrites, Geochimica et Cosmochimica Acta, 2017.

,. Van-schmus, . Wr, and J. A. Wood, A chemical-petrologic classification for the chondritic meteorites, Geochimica et Cosmochimica Acta, vol.31, issue.5, pp.747-765, 1967.

M. J. Verdier-paoletti, Y. Marrocchi, G. Avice, M. Roskosz, A. Gurenko et al., Oxygen isotope constraints on the alteration temperatures of CM chondrites. Earth and Planetary Science Letters, 2017.

K. J. Walsh, A. Morbidelli, S. N. Raymond, D. P. O'brien, and A. M. Mandell, Populating the asteroid belt from two parent source regions due to the migration of giant planets-"The Grand Tack, Meteoritics & Planetary Science, vol.47, pp.1941-1947, 2012.
URL : https://hal.archives-ouvertes.fr/hal-00839453

H. Wang, R. C. Bell, M. J. Iedema, A. A. Tsekouras, C. et al., Sticky ice grains aid planet formation : Unusual properties of cryogenic water ice, The Astrophysical Journal, vol.620, issue.2, p.1027, 2005.

P. H. Warren, Stable-isotopic anomalies and the accretionary assemblage of the earth and mars : A subordinate role for carbonaceous chondrites, Earth and Planetary Science Letters, vol.311, issue.1, p.13, 2011.

J. T. Wasson, Meteorites : Classification and Properties, vol.316, 1974.

D. H. Wooden, S. B. Charnley, E. , and P. , Composition and evolution of interstellar clouds, Comets II, pp.33-66, 2004.

E. D. Young, R. D. Ash, P. England, and D. Rumble, Fluid flow in chondritic parent bodies : Deciphering the compositions of planetesimals, Science, vol.286, issue.5443, pp.1331-1335, 1999.

E. D. Young, K. K. Zhang, and G. Schubert, Conditions for pore water convection within carbonaceous chondrite parent bodies-implications for planetesimal size and heat production, Earth and Planetary Science Letters, vol.213, issue.3, p.22, 2003.

H. Yurimoto and K. Kuramoto, Molecular cloud origin for the oxygen isotope heterogeneity in the solar system, Science, vol.305, issue.5691, p.39, 2004.

M. E. Zolensky, A. V. Ivanov, S. V. Yang, D. W. Mittlefehldt, and K. Ohsumi, The Kaidun meteorite : Mineralogy of an unusual CM1 lithology, Meteoritics & Planetary Science, vol.31, issue.4, p.14, 1996.

M. E. Zolensky, D. W. Mittlefehldt, M. E. Lipschutz, M. Wang, R. N. Clayton et al., CM chondrites exhibit the complete petrologic range from type 2 to 1, Geochimica et Cosmochimica Acta, vol.61, issue.23, pp.5099-5115, 1997.