A. Johansen, M. M. Low, P. Lacerda, and M. Bizzarro, Growth of asteroids, planetary embryos, and Kuiper belt objects by chondrule accretion, Sci. Adv, vol.1, p.1500109, 2015.

K. J. Walsh, A. Morbidelli, S. N. Raymond, D. P. O'brien, and A. M. Mandell, A low mass for Mars from Jupiter's early gas-driven migration, Nature, vol.475, pp.206-209, 2011.

C. F. Chyba, The cometary contribution to the oceans of primitive Earth, Nature, vol.330, pp.632-635, 1987.

A. Morbidelli, J. Chambers, J. I. Lunine, J. M. Petit, F. Robert et al., Source regions and timescales for the delivery of water to the Earth, Meteorit. Planet. Sci, vol.35, pp.1309-1320, 2000.

D. P. O'brien, A. Izidoro, S. A. Jacobson, S. N. Raymond, and D. C. Rubie, The delivery of water during terrestrial planet formation, Space Sci. Rev, vol.214, p.47, 2018.

M. Fischer-gödde and T. Kleine, Ruthenium isotopic evidence for an inner Solar System origin of the late veneer, Nature, vol.541, pp.525-527, 2017.

K. Righter and M. J. Drake, Effect of water on metal-silicate partitioning of siderophile elements: A high pressure and temperature terrestrial magma ocean and core formation, Earth Planet. Sci. Lett, vol.171, pp.383-399, 1999.

V. Clesi, M. A. Bouhifd, N. Bolfan-casanova, G. Manthilake, A. Fabbrizio et al., and Fe: Implications for the oxidation state of the Earth and Mars, Geochim. Cosmochim. Acta, vol.192, pp.97-121, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01637102

H. Palme, K. Lodders, and A. Jones, Solar system abundances of the elements, Treatise on Geochemistry A. M. Davis, vol.2, pp.15-36, 2014.

M. Schiller, C. Paton, and M. Bizzarro, Evidence for nucleosynthetic enrichment of the protosolar molecular cloud core by multiple supernova events, Geochim. Cosmochim. Acta, vol.149, pp.88-102, 2015.

D. L. Cook and M. Schönbächler, Iron isotopic compositions of troilite (FeS) inclusions from iron meteorites, Astron. J, vol.154, p.172, 2017.

J. E. Chambers, Planetary accretion in the inner Solar System, Earth Planet. Sci. Lett, vol.223, pp.241-252, 2004.

M. Schönbächler, R. W. Carlson, M. F. Horan, T. D. Mock, and E. H. Hauri, Heterogeneous accretion and the moderately volatile element budget of Earth, Science, vol.328, pp.884-887, 2010.

D. C. Rubie, D. J. Frost, U. Mann, Y. Asahara, F. Nimmo et al., Heterogeneous accretion, composition and core-mantle differentiation of the Earth, Earth Planet. Sci. Lett, vol.301, pp.31-42, 2011.

D. C. Rubie, S. A. Jacobson, A. Morbidelli, D. P. O'brien, E. D. Young et al., Accretion and differentiation of the terrestrial planets with implications for the compositions of early-formed Solar System bodies and accretion of water, Icarus, vol.248, pp.89-108, 2015.

E. M. Van-kooten, D. Wielandt, M. Schiller, K. Nagashima, A. Thomen et al., Isotopic evidence for primordial molecular cloud material in metal-rich carbonaceous chondrites, Proc. Natl. Acad. Sci. U.S.A, vol.113, pp.2011-2016, 2016.

J. Zhang, N. Dauphas, A. M. Davis, I. Leya, and A. Fedkin, The proto-Earth as a significant source of lunar material, Nat. Geosci, vol.5, pp.251-255, 2012.

M. Schiller, M. Bizzarro, and V. A. Fernandes, Isotopic evolution of the protoplanetary disk and the building blocks of Earth and the Moon, Nature, vol.555, pp.507-510, 2018.

N. Hosono, S. I. Karato, J. Makino, and T. R. Saitoh, Terrestrial magma ocean origin of the Moon, Nat. Geosci, vol.12, pp.418-423, 2019.

J. Bollard, J. N. Connelly, and M. Bizzarro, Pb-Pb dating of individual chondrules from the CBachondrite Gujba: Assessment of the impact plume formation model, Meteorit. Planet. Sci, vol.50, pp.1197-1216, 2015.

J. Siebert, J. Badro, D. Antonangeli, and F. J. Ryerson, Terrestrial accretion under oxidizing conditions, Science, vol.339, pp.1194-1197, 2013.
URL : https://hal.archives-ouvertes.fr/hal-00799054

J. Badro, A. S. Côté, and J. P. Brodholt, A seismologically consistent compositional model of Earth's core, Proc. Natl. Acad. Sci. U.S.A, vol.111, pp.7542-7545, 2014.

J. Badro, J. P. Brodholt, H. Piet, J. Siebert, and F. J. Ryerson, Core formation and core composition from coupled geochemical and geophysical constraints, Proc. Natl. Acad. Sci. U.S.A, vol.112, pp.12310-12314, 2015.
URL : https://hal.archives-ouvertes.fr/insu-02136916

M. J. Drake, Origin of water in the terrestrial planets, Meteorit. Planet. Sci, vol.40, pp.519-527, 2005.

L. Vattuone, M. Smerieri, L. Savio, A. M. Asaduzzaman, K. Muralidharan et al., Accretion disc origin of the Earth's water, Philos. Trans. R. Soc. A, vol.371, p.20110585, 2013.

L. J. Hallis, G. R. Huss, K. Nagashima, G. J. Taylor, S. A. Halldórsson et al., Evidence for primordial water in Earth's deep mantle, Science, vol.350, pp.795-797, 2015.

T. Kleine, M. Touboul, B. Bourdon, F. Nimmo, K. Mezger et al., Hf-W chronology of the accretion and early evolution of asteroids and terrestrial planets, Geochim. Cosmochim. Acta, vol.73, pp.5150-5188, 2009.

R. A. Fischer and F. Nimmo, Effects of core formation on the Hf-W isotopic composition of the Earth and dating of the Moon-forming impact, Earth Planet. Sci. Lett, vol.499, pp.257-265, 2018.

G. Yu and S. B. Jacobsen, Fast accretion of the Earth with a late Moon-forming giant impact, Proc. Natl. Acad. Sci. U.S.A, vol.108, pp.17604-17609, 2011.

L. E. Borg, A. M. Gaffney, and C. K. Shearer, Meteorit. Planet. Sci, vol.50, pp.715-732, 2015.

J. Bollard, J. N. Connelly, M. J. Whitehouse, E. A. Pringle, L. Bonal et al., Early formation of planetary building blocks inferred from Pb isotopic ages of chondrules, Sci. Adv, vol.3, p.1700407, 2017.

C. Paton, M. Schiller, and M. Bizzarro, Identification of an 84 Sr-depleted carrier in primitive meteorites and implications for thermal processing in the solar protoplanetary disk, Astrophys. J. Lett, vol.763, p.40, 2013.

M. Schiller, E. Van-kooten, J. C. Holst, M. B. Olsen, and M. Bizzarro, Precise measurement of chromium isotopes by MC-ICPMS, J. Anal. At. Spectrom, vol.29, pp.1406-1416, 2014.

N. Dauphas, P. E. Janney, R. A. Mendybaev, M. Wadhwa, F. M. Richter et al., Chromatographic separation and multicollection-ICPMS analysis of iron. Investigating mass-dependent and -independent isotope effects, Anal. Chem, vol.76, pp.5855-5863, 2004.

J. Völkening and D. A. Papanastassiou, Iron isotope anomalies, Astrophys. J, vol.347, pp.43-46, 1989.

S. M. Elardo and A. Shahar, Non-chondritic iron isotope ratios in planetary mantles as a result of core formation, Nat. Geosci, vol.10, pp.317-321, 2017.

W. F. Mcdonough and S. S. Sun, The composition of the Earth, Chem. Geol, vol.120, pp.223-253, 1995.

N. Dauphas, J. H. Chen, J. Zhang, D. A. Papanastassiou, A. M. Davis et al., Calcium-48 isotopic anomalies in bulk chondrites and achondrites: Evidence for a uniform isotopic reservoir in the inner protoplanetary disk, Earth Planet. Sci. Lett, vol.407, pp.96-108, 2014.

A. Trinquier, T. Elliott, D. Ulfbeck, C. Coath, A. N. Krot et al., Origin of nucleosynthetic isotope heterogeneity in the solar protoplanetary disk, Science, vol.324, pp.374-376, 2009.

C. Burkhardt, T. Kleine, F. Oberli, A. Pack, B. Bourdon et al., Molybdenum isotope anomalies in meteorites: Constraints on solar nebula evolution and origin of the Earth, Earth Planet. Sci. Lett, vol.312, pp.390-400, 2011.
URL : https://hal.archives-ouvertes.fr/insu-00673509

H. Tang and N. Dauphas, Abundance, distribution, and origin of 60 Fe in the solar protoplanetary disk, Earth Planet. Sci. Lett, vol.359, pp.248-263, 2012.

H. Tang and N. Dauphas, 60 Fe-60 Ni chronology of core formation in Mars, Earth Planet. Sci. Lett, vol.390, pp.264-274, 2014.

J. Zhang, N. Dauphas, A. M. Davis, and A. Pourmand, A new method for MC-ICPMS measurement of titanium isotopic composition: Identification of correlated isotope anomalies in meteorites, J. Anal. At. Spectrom, vol.26, pp.2197-2205, 2011.

A. Trinquier, J. Birck, and C. L. Allegre, Widespread 54 Cr heterogeneity in the inner solar system, Astrophys. J, vol.655, pp.1179-1185, 2007.

A. Yamakawa, K. Yamashita, A. Makishima, and E. Nakamura, Chromium isotope systematics of achondrites: Chronology and isotopic heterogeneity of the inner solar system bodies, Astrophys. J, vol.720, pp.150-154, 2010.

L. Qin, C. M. O'd.-alexander, R. W. Carlson, M. F. Horan, and T. Yokoyama, Contributors to chromium isotope variation of meteorites, Geochim. Cosmochim. Acta, vol.74, pp.1122-1145, 2010.

R. W. Carlson, M. Boyet, and M. Horan, Chondrite barium, neodymium, and samarium isotopic heterogeneity and early earth differentiation, Science, vol.316, pp.1175-1178, 2007.

M. Boyet, 142 Nd evidence for early (>4.53 Ga) global differentiation of the silicate Earth, Science, vol.309, pp.576-581, 2005.

L. E. Borg, G. A. Brennecka, and S. J. Symes, Accretion timescale and impact history of Mars deduced from the isotopic systematics of martian meteorites, Geochim. Cosmochim. Acta, vol.175, pp.150-167, 2016.

F. Moynier, J. M. Day, W. Okui, T. Yokoyama, A. Bouvier et al., Planetary-scale strontium isotopic heterogeneity and the age of volatile depletion of early Solar System materials, Astrophys. J, vol.758, p.45, 2012.

U. Hans, T. Kleine, and B. Bourdon, Rb-Sr chronology of volatile depletion in differentiated protoplanets: BABI, ADOR and ALL revisited, Earth Planet. Sci. Lett, vol.374, pp.204-214, 2013.

N. R. Clayton, Oxygen isotopes in meteorites, Annu. Rev. Earth Planet. Sci, vol.21, pp.115-149, 1993.

M. Fischer-gödde, C. Burkhardt, T. S. Kruijer, and T. Kleine, Ru isotope heterogeneity in the solar protoplanetary disk, Geochim. Cosmochim. Acta, vol.168, pp.151-171, 2015.

W. Akram, M. Schönbächler, S. Bisterzo, and R. Gallino, Zirconium isotope evidence for the heterogeneous distribution of s-process materials in the solar system, Geochim. Cosmochim. Acta, vol.165, pp.484-500, 2015.

K. R. Bermingham, E. A. Worsham, and R. J. Walker, New insights into Mo and Ru isotope variation in the nebula and terrestrial planet accretionary genetics, Earth Planet. Sci. Lett, vol.487, pp.221-229, 2018.

S. Goderis, A. D. Brandon, B. Mayer, and M. Humayun, S-Process Os isotope enrichment in ureilites by planetary processing, Earth Planet. Sci. Lett, vol.431, pp.110-118, 2015.

J. M. Day, R. J. Walker, L. Qin, D. Rumble, and . Iii, Late accretion as a natural consequence of planetary growth, Nat. Geosci, vol.5, pp.614-617, 2012.

, Iron isotope evidence for very rapid accretion and differentiation of the proto-Earth Martin Schiller, p.7604

, Sci Adv REFERENCES

, This article cites 56 articles, 12 of which you can access for free