D. J. Barber, Matrix phyllosilicates and associated minerals in C2M carbonaceous 602 chondrites, Geochimica et Cosmochimica Acta, vol.45, pp.945-970, 1981.

S. W. Bailey, Odinite, a new dioctahedral-trioctahedral Fe 3+ -rich 1:1 clay mineral, Clay 604 Mineral, vol.23, pp.237-247, 1988.

T. E. Bunch and S. Chang, Carbonaceous chondrites-II. Carbonaceous chondrite 606 phyllosilicates and light element geochemistry as indicators of parent body processes 607 and surface conditions, Geochimica et Cosmochimica Acta, vol.44, pp.1543-1577, 1980.

G. Benedix, L. Leshin, J. Farquhar, T. Jackson, and M. Thiemens, Carbonates in CM2 609 chondrites: constraints on alteration conditions from oxygen isotopic compositions 610 and petrographic observations, Geochimica et Cosmochimica Acta, vol.67, pp.1577-1588, 2003.

J. P. Bradley, Chemically Anomalous, Preaccretionally Irradiated Grains in 612 Interplanetary Dust form Comets, Science, vol.265, pp.925-929, 1994.

A. J. Brearley, The action of water, Meteorites and the early solar system II, pp.587-624, 2006.

G. W. Brindley, Chemical compositions of berthierines -a review, Clays Clay Miner, vol.617, pp.153-155, 1982.

L. B. Browning and W. L. Bourcier, Tochilinite: A sensitive indicator of alteration 619 conditions on the CM asteroidal parent body, Proceedings, 44th Lunar and Planetary 620 Science Conference, pp.171-172, 1996.

N. I. Chistyakova, V. S. Rusakov, T. V. Gubaidulina, and S. V. Kozerenko, Investigations 622 of sulfide minerals with layered structure by Mössbauer spectroscopy methods, vol.623, pp.613-617, 2005.

B. E. Clark, J. Ziffer, D. Nesvorny, H. Campins, A. S. Rivkin et al., , p.625

M. Fulchignoni, R. P. Binzel, S. Fornasier, F. Demeo, M. E. Ockert-bell et al., Spectroscopy of B-type asteroids: Subgroups and meteorite 627 analogs, Journal of Geophysical Research Planets, vol.115, pp.1-22, 2010.

R. N. Clayton and T. K. Mayeda, The oxygen isotope record in Murchison and other 629 carbonaceous chondrites, Earth and Planetary Science Letter, vol.67, pp.151-161, 1984.

E. A. Cloutis, T. Hiroi, M. J. Gaffey, C. M. Alexander, . O'd et al., Spectral 631 reflectance properties of carbonaceous chondrites: 1. CI chondrites, Icarus, vol.212, pp.180-632, 2011.

M. Dargent, L. Truche, J. Dubessy, G. Bessaque, and H. Marmier, Reduction Kinetics 634 of Aqueous U(VI) in Acidic Chloride Brines to Uraninite by Methane, Hydrogen or C-635 Graphite under Hydrothermal Conditions: Implications for the Genesis of 636 Unconformity-Related Uranium Ore Deposits, Geochimica et Cosmochimica Acta, vol.637, pp.11-26, 2015.

C. Davoisne, Z. Djouadi, H. Leroux, L. Hendecourt, A. Jones et al., The 639 origin of GEMS in IDPs as deduced from microstructural evolution of amorphous 640 silicates with annealing, Astronomy & Astrophysics, vol.448, pp.1-4, 2006.

J. Declercq, T. Diedrich, M. Perrot, S. R. Gislason, and E. H. Oelkers, Experimental 642 determination of rhyolitic glass disso-lution rates at 40-200°C and 2 < pH < 10.1. 643, Geochimica et Cosmochimica Acta, vol.100, pp.251-263, 2013.

K. A. Dyl, C. E. Manning, and Y. E. , Modelling aqueous alteration of CM 645 carbonaceous chondrites: implications for cronstedtite formation by water-rock 646 reaction, abstract #2060). 37th Lunar and Planetary Science Conference, 2006.

L. H. Fuchs, E. Olsen, and K. J. Jensen, Mineralogy, mineral-chemistry, and 648 composition of the Murchison (C2) meteorite, Smithsonian Contributions to the Earth 649 Sciences, vol.10, pp.1-39, 1973.

W. Fujiya, N. Sugiura, Y. Marrocchi, N. Takahata, P. Hoppe et al., , p.651

H. Hiyagon, Comprehensive study of carbon and oxygen isotopic compositions, 652 trace element abundances, and cathodoluminescence intensities of calcite in the 653, 2015.

C. M. Murchison and . Chondrite, Geochimica et Cosmochimica Acta, vol.161, pp.101-117

T. V. Gubaidulina, N. I. Chistyakova, and V. S. Rusakov, Mössbauer study of layered 655 iron hydroxysulfides: Tochilinite and valleriite, Bulletin of the Russian Academy of 656 Sciences, vol.71, pp.1269-1272, 2007.

S. Guggenheim, S. W. Bailey, R. A. Eggleton, and P. Wilkes, Structural aspects of 658 greenalite and related minerals, The Canadian Mineralogist, vol.20, pp.1-18, 1982.

H. Haack, T. Grau, A. Bischoff, M. Horstmann, J. Wasson et al., Gabelica 661 Z., and Schmitt-Kopplin P. 2012. Maribo-A new CM fall from Denmark, vol.47, pp.30-50

N. P. Hanowski and A. J. Brearley, Aqueous alteration of chondrules in the CM 664 carbonaceous chondrite, Allan Hills 81002: Implications for parent body alteration, Geochimica et Cosmochimica Acta, vol.665, pp.495-518, 2001.

R. H. Hewins, M. Bourot-denise, B. Zanda, H. Leroux, J. Barrat et al., , p.667

R. C. Greenwood, I. A. Franchi, S. Pont, J. Lorand, C. Cournède et al., , p.668

R. P. Kuga, M. Marrocchi, Y. , and M. B. , The Paris meteorite, the least 669 altered CM chondrite so far, Geochimica et Cosmochimica Acta, vol.124, pp.190-222, 2014.

H. D. Holland, Stability relations among the oxides, sulfides, sulfates and carbonates of 671 ore and gangue metals, [Part] 1 of Some applications of thermochemical data to 672 problems of ore deposits, Economic Geology, vol.54, pp.184-233, 1959.

K. T. Howard, C. M. Alexander, . O&apos;d, D. L. Schrader, and K. A. Dyl, Classification of 674 hydrous meteorites (CR, CM and C2 ungrouped) by phyllosilicate fraction: PSD-XRD 675 modal mineralogy and planetesimal environments, Geochimica et Cosmochimica Acta, vol.676, pp.206-222, 2015.

K. T. Howard, G. K. Benedix, P. A. Bland, and G. Cressey, Modal mineralogy of CM 678 chondrites by X-ray diffraction (PSD-XRD): Part 2. Degree, nature and settings of 679 aqueous alteration, Geochimica et Cosmochimica Acta, vol.75, pp.2735-2751, 2011.

K. T. Howard, G. K. Benedix, P. A. Bland, and G. Cressey, Modal mineralogy of CM2 681 chondrites by PSD-XRD: Part 1. Total phyllosilicate abundance and the degree of 682 aqueous alteration, Geochimica et Cosmochimica Acta, vol.73, pp.4576-4589, 2009.

J. Hybler, V. Pet?í?ek, S. ?urovi?, and ?. Smr?ok, Refinement of the Crystal Structure 684 of Cronstedtite-1T, Clays and Clay Minerals, vol.48, pp.331-338, 2000.

E. Jarosewich, Chemical analyses of meteorites: a compilation of stony and iron 686 meteorite analyses, Meteoritics, vol.25, pp.323-337, 1990.

G. A. Kakos, T. W. Turney, and W. T. , Synthesis and structure of tochilinite: A 688 layered metal hydroxide/sulfide composite, Journal of Solid State Chemistry, vol.108, pp.102-689, 1994.

L. P. Keller and S. Messenger, On the origins of GEMS grains. Geochimica et 691, Cosmochimica Acta, vol.75, pp.5336-5365, 2011.

T. Kogure, J. Hybler, Y. , and H. , Coexistence of two polytypic groups in 693 cronstedtite from Lostwithiel England, Clays and Clay Minerals, vol.50, pp.504-513, 2002.

S. V. Kozerenko, V. V. Fadeev, N. I. Organova, N. I. Chstyakova, and N. N. Kolpakova, , p.695

V. G. , Synthesis, formation conditions and crystallochemistry of tochilinites -696 iron, magnesium and sodium hydroxide-sulfides, Experiment in Geosciences, vol.10, pp.57-697, 2001.

S. V. Kozerenko, N. J. Organova, V. V. Fadeev, L. O. Magazina, and N. N. Kolpakova, , p.699

L. A. Kopneva, Tochilinite produced in laboratory, Proceedings, 27th Lunar and 700 Planetary Science Conference, pp.695-696, 1996.

B. Lanson, S. Lantenois, P. A. Van-aken, A. Bauer, and A. Plançon, Experimental 702 investigation of smectite interaction with metal iron at 80ºC: structural 703 characterization of newly formed Fe-rich phyllosilicates, American Mineralogist, vol.704, pp.864-871, 2012.

S. Lantenois, B. Lanson, F. Muller, A. Bauer, M. Jullien et al., 706 Experimental study of smectite interaction with metal, p.1, 2005.

, Smectite destabilization, Clays and Clay Minerals, vol.53, pp.597-612

M. R. Lee, P. Lindgren, and M. R. Sofe, Aragonite, breunnerite, calcite and dolomite in 709 the CM carboanceous chondrites: High fidelity recorders of progressive parent body 710 aqueous alteration, Geochimica et Cosmochimica Acta, vol.144, pp.126-156, 2014.

M. R. Lee, M. R. Sofe, P. Lindgren, N. A. Starkey, and I. A. Franchi, The oxygen 712 isotope evolution of parent body aqueous solutions as recorded by multiple carbonate 713 generations in the Lonewolf Nunatak 94101 CM2 carbonaceous chondrite, 2013.

, Geochimica et Cosmochimica Acta, vol.121, pp.452-466

M. R. Lee and R. Ellen, Aragonite in the Murray (CM2) carbonaceous chondrite: 716 implications for parent body compaction and aqueous alteration, Meteoritics & 717 Planetary Science, vol.43, pp.1219-1231, 2008.

H. Leroux, P. Cuvillier, B. Zanda, and R. H. Hewins, GEMS-like material in the matrix 719 of the Paris meteorite and the early stages of alteration of CM chondrites, Cosmochimica Acta, vol.720, pp.247-265, 2015.

I. D. Mackinnon and M. E. Zolensky, Proposed structures for poorly characterized 722 phases in C2M carbonaceous chondrite matrix, Nature, vol.309, pp.240-242, 1984.

Y. Marrocchi, M. Gounelle, I. Blanchard, F. Caste, and A. T. Kearsley, The Paris CM 724 chondrite: Secondary minerals and asteroidal processing, Meteorit. Planet. Sci, vol.49, pp.1232-1249, 2014.

Y. Marrocchi, D. V. Bekaert, and L. Piani, Origin and abundance of water in 727 carbonaceous asteroids, Earth and Planetary Science Letter, vol.482, pp.23-32, 2018.

J. A. Mcalister and R. M. Kettler, Metastable equilibria among dicarboxylic acids and 729 the oxidation state during aqueous alteration on the CM2 chondrite parent body, Geochimica et Cosmochimica Acta, vol.730, pp.233-241, 2008.

T. Mizutani, Y. Fukushima, A. Okada, O. Kamigaito, and K. T. , Synthesis of 732 1:1 and 2:1 iron phyllosilicates and characterization of their iron state by Mössbauer 733 spectroscopy, Clays and Clay Minerals, vol.39, pp.381-386, 1991.

L. V. Moroz, S. V. Kozerenko, and V. V. Fadeev, The reflectance spectrum of synthetic 735 tochilinite, Proceedings, 28th Lunar and Planetary Science Conference, pp.983-984, 1997.

T. Nakamura and Y. Nakamuta, X-ray study of PCP from the Murchison CM 737 carbonaceous chondrite, Proceeding of the NIPR Symposium on Antarctic Meteorites 738, vol.9, pp.37-50, 1996.

N. I. Organova, A. I. Gorshkov, Y. P. Dikov, V. A. Laputina, I. P. Sluzhenikin et al., The new data on tochilinite, 741 International Geology Review, vol.6, pp.84-98, 1988.

N. I. Organova, V. A. Drits, and A. L. Dmitrik, Structural study of tochilinite. Part I. 743 The isometric variety, Soviet Physics -Crystallography, vol.17, pp.667-671, 1973.

N. I. Organova, A. D. Genkin, V. A. Drits, A. L. Dmitrik, and O. V. Kuzmina, 745 Tochilinite: A new sulfide hydroxide of iron and magnesium. Zapiski Vses 746 Mineralogiscogo Obschestva, vol.4, pp.477-487, 1971.

E. E. Palmer and D. S. Lauretta, Aqueous alteration o kamacite in CM chondrites, 2011.

, Meteoritics & Planetary Science, vol.46, pp.1587-1607

Y. Peng, L. Xu, G. Xi, C. Zhong, J. Lu et al., An experimental study on the hydrothermal preparation of tochilinite nanotubes 751 and tochilinite serpentine-intergrowth nanotubes from metal particles, Geochimica et 752 Cosmochimica Acta, vol.71, pp.2858-2875, 2007.

Y. Peng and Y. Jing, Hydrothermal preparation of analogous matrix materials of 754 carbonaceous chondrites from metal alloy particles, Meteoritics & Planetary Science, vol.755, pp.252-262, 2014.

O. Pierron, Interactions eau-fer-argilite: Rôle des paramètres Liquide/Roche, p.757, 2011.

. Fer/argilite, Température sur la nature des phases minérales

I. V. Pekov, E. V. Sereda, Y. S. Polekhovsky, S. N. Britvin, N. V. Chukanov et al.,

O. Bryzgalov and I. A. , Ferrotochilinite, 6FeS · 5Fe(OH) 2 , a new mineral from 761 the Oktyabr'sky deposit, Noril'sk district, Geology of Ore Deposits, vol.762, pp.567-574, 2013.

I. Pignatelli, E. Mugnaioli, and Y. Marrocchi, Cronstedtite polytypes in the Paris 764 meteorite, European Journal Mineralogy, vol.30, pp.349-354, 2018.

I. Pignatelli, Y. Marrocchi, E. Mugnaioli, F. Bourdelle, and G. M. , Mineralogical, 766 crystallographic and redox features of the earliest stages of fluid alteration in CM 767 chondrites, Geochimica et Cosmochimica Acta, vol.209, pp.106-122, 2017.

I. Pignatelli, Y. Marrocchi, L. G. Vacher, R. Delon, and G. M. , Multiple 769 precursors of secondary mineralogical assemblages in CM chondrites, Meteoritics & 770 Planetary Science, vol.51, pp.785-805, 2016.

I. Pignatelli, L. G. Vacher, and Y. Marrocchi, Hydrothermal preparation of analogous 772 matrix minerals of CM carbonaceous chondrites from metal alloy particles, 2015.

Y. Peng and . Jing, Earth Planet. Sci. Lett, vol.408, pp.307-309, 2014.

I. Pignatelli, F. Bourdelle, D. Bartier, R. Mosser-ruck, L. Truche et al., Iron-clay interactions: detailed study of the mineralogical transformation of 777 claystone with emphasis on the formation of iron-rich T-O phyllosilicates in a step-by-778 step cooling experiment from 90°C to 40°C, Chemical Geology, vol.387, pp.1-11, 2014.

I. Pignatelli, E. Mugnaioli, J. Hybler, R. Mosser-ruck, M. Cathelineau et al., 780 A multi-technique characterization of cronstedtite synthesized by iron-clay interaction 781 in a step-by-step cooling procedure, Clays and Clay Minerals, vol.61, pp.277-289, 2013.

P. Ramdohr, The opaque minerals in stony meteorites, Journal of Geophysical Research, vol.783, pp.2011-2036, 1963.

C. Rivard, Contribution à l'étude de la stabilité des minéraux constitutifs de l'argilite du 785, 2011.

, Callovo-Oxfordien en présence de fer à 90°C, p.786

F. Nancy,

A. E. Rubin, J. M. Trigo-rodríguez, H. Huber, and J. T. Wasson, Progressive aqueous 788 alteration of CM carbonaceous chondrites, Geochimica et Cosmochimica Acta, vol.789, pp.2361-2382, 2007.

M. Schulte and E. Schock, Coupled organic synthesis and mineral alteration on the 791 meteorite parent bodies, Earth and Planetary Science Letter, vol.39, pp.1577-1590, 2004.

B. J. Skynner and D. Luce, Solid Solutions of the type (Ca,Mg,Mn,Fe)S and their use 793 as geothermometers for the enstatite chondrites, American Mineralogist, vol.56, pp.1269-794, 1971.

K. Tomeoka, P. R. Buseck, and N. ;-s, Indicators of aqueous alteration in CM carbonaceous 796 chondrites: Microtextures of a layered mineral containing Fe, 1985.

, Geochimica et Cosmochimica Acta, vol.49, pp.2149-2163

L. G. Vacher, Y. Marrocchi, J. Villeneuve, M. J. Verdier-paoletti, and G. M. , 799 Petrographic and C & O isotopic characteristics of the earliest stages of aqueous 800 alteration of CM chondrites, Geochimica et Cosmochimica Acta, vol.213, pp.271-290, 2017.

M. A. Velbel, Stoichiometric reactions describing serpentinization of anhydrous primary 802 silicates: a critical appraisal, with application to aqueous alteration of chondrule 803 silicates in CM carbonaceous chondrites, Clays and Clay Minerals, vol.62, pp.126-136, 2014.

M. J. Verdier-paoletti, Y. Marrocchi, G. Avice, M. Roskosz, A. Gurenko et al., Oxygen isotope constraints on the alteration temperatures of CM chondrites, 806 Earth Planet. Sci. Lett, vol.805, pp.273-281, 2017.

J. D. Vienna, J. N. James, V. R. Joseph, and S. N. , Impacts of glass 808 composition, pH, and temperature on glass forward dissolution rate, Npj Materials, vol.809, p.22, 2018.

M. E. Zolensky, D. W. Mittlefehldt, M. E. Lipschutz, M. Wang, R. N. Clayton et al.,

K. Grady, M. M. Pillinger, C. , and B. D. , CM chondrites exhibit the complete 812 petrologic range from type 2 to 1, Geochimica et Cosmochimica Acta, vol.61, pp.5099-5115, 1997.

M. E. Zolensky and I. D. Mackinnon, Microstructures of cylindrical tochilinites, 1986.

, American Mineralogist, vol.71, pp.1201-1209

M. E. Zolensky, R. Barett, and L. Browning, Mineralogy and composition of matrix and 816 chondrule rims in carbonaceous chondrites, Geochimica et Cosmochimica Acta, vol.817, pp.3123-3148, 1993.

M. Y. Zolotov, Formation of brucite and cronstedtite-bearing mineral assemblages on 819 Ceres, Icarus, vol.228, pp.13-26, 2014.