TY - JOUR
T1 - Experimental determination of carbon isotope fractionation between iron carbide melt and carbon
T2 - 12C-enriched carbon in the Earth's core?
AU - Satish-Kumar, Madhusoodhan
AU - So, Hayato
AU - Yoshino, Takashi
AU - Kato, Mutsumi
AU - Hiroi, Yoshikuni
N1 - Funding Information:
We are grateful to T. Hokada for the helps in obtaining the Raman Spectra of diamond and T. Kobayashi for EPMA analysis. We thank H. Wada and E. Itoh for stimulating discussions. Constructive criticisms raised by two journal reviewers helped to improve the manuscript. We thank Rick Carlson for the suggestions and editorial handling of our manuscript. This paper presents a result of a joint research program carried out at the Institute for Study of the Earth's Interior, Okayama University. MS-K and T. Y acknowledges the financial support from the Ministry of Education, Culture, Sports, Science and Technology, Japan (Nos. 23654186 and 20340120 , respectively).
PY - 2011/10/15
Y1 - 2011/10/15
N2 - We report here new experimental data on equilibrium carbon isotope fractionation between graphite/diamond and iron carbide melt at 5 and 10GPa and in the temperature range between 1200 and 2000°C. Carbon isotope equilibrium was tested using morphological features of graphite and also by performing a longer duration experiment, both of which suggested that equilibrium carbon isotope fractionation is present. The results suggest that iron carbide melt will preferentially accumulate 12C rather than 13C. An equilibrium temperature dependent fractionation between iron carbide melt and graphite/diamond is proposed based on the relationδ13C(gr/dia - iron carbide melt)=8.85106/T2K+0.99.Our results are consistent with the carbon isotope distribution between graphite and cohenite (Fe3C) observed in iron meteorites. We propose that temperature-dependent fractionation of carbon isotopes between iron carbide melt and graphite/diamond might have created a "12C-enriched core" with a significant difference in the distribution of carbon isotopes between the carbon in the metallic core and bulk silicate Earth during the accretion and differentiation of early Earth. Recent findings of low δ13C carbonados and diamonds of deep mantle origin supports the presence of a 12C enriched source. The possible presence of a reservoir of12C-enriched carbon in the Earth's core implies that it can generate large perturbations in the surface and shallow carbon-isotope system by the flux of lighter carbon from the core-mantle boundary.
AB - We report here new experimental data on equilibrium carbon isotope fractionation between graphite/diamond and iron carbide melt at 5 and 10GPa and in the temperature range between 1200 and 2000°C. Carbon isotope equilibrium was tested using morphological features of graphite and also by performing a longer duration experiment, both of which suggested that equilibrium carbon isotope fractionation is present. The results suggest that iron carbide melt will preferentially accumulate 12C rather than 13C. An equilibrium temperature dependent fractionation between iron carbide melt and graphite/diamond is proposed based on the relationδ13C(gr/dia - iron carbide melt)=8.85106/T2K+0.99.Our results are consistent with the carbon isotope distribution between graphite and cohenite (Fe3C) observed in iron meteorites. We propose that temperature-dependent fractionation of carbon isotopes between iron carbide melt and graphite/diamond might have created a "12C-enriched core" with a significant difference in the distribution of carbon isotopes between the carbon in the metallic core and bulk silicate Earth during the accretion and differentiation of early Earth. Recent findings of low δ13C carbonados and diamonds of deep mantle origin supports the presence of a 12C enriched source. The possible presence of a reservoir of12C-enriched carbon in the Earth's core implies that it can generate large perturbations in the surface and shallow carbon-isotope system by the flux of lighter carbon from the core-mantle boundary.
KW - Carbon isotopes
KW - Core
KW - Deep carbon cycle
KW - Iron carbide
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U2 - 10.1016/j.epsl.2011.08.008
DO - 10.1016/j.epsl.2011.08.008
M3 - Article
AN - SCOPUS:80053371312
SN - 0012-821X
VL - 310
SP - 340
EP - 348
JO - Earth and Planetary Sciences Letters
JF - Earth and Planetary Sciences Letters
IS - 3-4
ER -