The compositional variations among the chondrites inform us about cosmochemical fractionation processes during condensation and aggregation of solid matter from the solar nebula. These fractionations include: (i) variable Mg-Si-RLE ratios (RLE: refractory lithophile element), (ii) depletions in elements more volatile than Mg, (iii) a cosmochemical metal-silicate fractionation, and (iv) variations in oxidation state. Moon- to Mars-sized planetary bodies, formed by rapid accretion of chondrite-like planetesimals in local feeding zones within 106 years, may exhibit some of these chemical variations. However, the next stage of planetary accretion is the growth of the terrestrial planets from approximately 102 embryos sourced across wide helioce...
The 142Nd/ 144 Nd ratio of the Earth is greater than the solar ratio as inferred from chondritic met...
Primitive meteorites preserve the chemical and isotopic composition of the first aggregates that for...
Geochemical studies of planetary accretion and evolution have invoked various degrees of collisional...
International audienceEarly in the Solar System's history, energetic collisions of differentiated bo...
International audienceImpact-induced erosion of the Earth's early crust during accretion of terrestr...
The processes of planet formation in our Solar System resulted in a final product of a small number ...
International audienceThe 146 Sm-142 Nd short-lived decay system (half-life of 103 Ma) is a powerful...
AbstractSeveral lines of evidence indicate a non-chondritic composition for bulk Earth. If Earth for...
Several lines of evidence indicate a non-chondritic composition for Bulk Earth. If Earth formed from...
International audienceSuperchondritic Sm/Nd (Samarium/Neodymium) ratio has been evidenced in Earth's...
Dynamical scenarios of terrestrial planets formation involve strong perturbations of the inner part ...
Bulk chondritic meteorites and terrestrial planets show a monotonic depletion in moderately volatile...
The depletion pattern of volatile elements on Earth and other differentiated terrestrial bodies prov...
The 142Nd/ 144 Nd ratio of the Earth is greater than the solar ratio as inferred from chondritic met...
Primitive meteorites preserve the chemical and isotopic composition of the first aggregates that for...
Geochemical studies of planetary accretion and evolution have invoked various degrees of collisional...
International audienceEarly in the Solar System's history, energetic collisions of differentiated bo...
International audienceImpact-induced erosion of the Earth's early crust during accretion of terrestr...
The processes of planet formation in our Solar System resulted in a final product of a small number ...
International audienceThe 146 Sm-142 Nd short-lived decay system (half-life of 103 Ma) is a powerful...
AbstractSeveral lines of evidence indicate a non-chondritic composition for bulk Earth. If Earth for...
Several lines of evidence indicate a non-chondritic composition for Bulk Earth. If Earth formed from...
International audienceSuperchondritic Sm/Nd (Samarium/Neodymium) ratio has been evidenced in Earth's...
Dynamical scenarios of terrestrial planets formation involve strong perturbations of the inner part ...
Bulk chondritic meteorites and terrestrial planets show a monotonic depletion in moderately volatile...
The depletion pattern of volatile elements on Earth and other differentiated terrestrial bodies prov...
The 142Nd/ 144 Nd ratio of the Earth is greater than the solar ratio as inferred from chondritic met...
Primitive meteorites preserve the chemical and isotopic composition of the first aggregates that for...
Geochemical studies of planetary accretion and evolution have invoked various degrees of collisional...