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      Meteorite zircon constraints on the bulk Lu-Hf isotope composition and early differentiation of the Earth.

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          Abstract

          Knowledge of planetary differentiation is crucial for understanding the chemical and thermal evolution of terrestrial planets. The (176)Lu-(176)Hf radioactive decay system has been widely used to constrain the timescales and mechanisms of silicate differentiation on Earth, but the data interpretation requires accurate estimation of Hf isotope evolution of the bulk Earth. Because both Lu and Hf are refractory lithophile elements, the isotope evolution can be potentially extrapolated from the present-day (176)Hf/(177)Hf and (176)Lu/(177)Hf in undifferentiated chondrite meteorites. However, these ratios in chondrites are highly variable due to the metamorphic redistribution of Lu and Hf, making it difficult to ascertain the correct reference values for the bulk Earth. In addition, it has been proposed that chondrites contain excess (176)Hf due to the accelerated decay of (176)Lu resulting from photoexcitation to a short-lived isomer. If so, the paradigm of a chondritic Earth would be invalid for the Lu-Hf system. Herein we report the first, to our knowledge, high-precision Lu-Hf isotope analysis of meteorite crystalline zircon, a mineral that is resistant to metamorphism and has low Lu/Hf. We use the meteorite zircon data to define the Solar System initial (176)Hf/(177)Hf (0.279781 ± 0.000018) and further to identify pristine chondrites that contain no excess (176)Hf and accurately represent the Lu-Hf system of the bulk Earth ((176)Hf/(177)Hf = 0.282793 ± 0.000011; (176)Lu/(177)Hf = 0.0338 ± 0.0001). Our results provide firm evidence that the most primitive Hf in terrestrial zircon reflects the development of a chemically enriched silicate reservoir on Earth as far back as 4.5 billion years ago.

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          Author and article information

          Journal
          Proc. Natl. Acad. Sci. U.S.A.
          Proceedings of the National Academy of Sciences of the United States of America
          Proceedings of the National Academy of Sciences
          1091-6490
          0027-8424
          Apr 28 2015
          : 112
          : 17
          Affiliations
          [1 ] Department of Earth and Planetary Science, The University of Tokyo, Tokyo 113-0033, Japan; and iizuka@eps.s.u-tokyo.ac.jp.
          [2 ] Department of Earth and Planetary Science, The University of Tokyo, Tokyo 113-0033, Japan; and.
          [3 ] Research School of Earth Sciences, The Australian National University, Canberra, ACT 0200, Australia.
          Article
          1501658112
          10.1073/pnas.1501658112
          4418863
          25870298
          1afe1b27-70b1-4bcd-b516-113c432c9454
          History

          meteorite zircon,hafnium isotopes,bulk silicate Earth,chondritic uniform reservoir,early Earth differentiation

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