Equilibrium indium isotope fractionation between indium-bearing minerals: Insights from first-principles calculations

Haochen Duan,Fang Huang

GEOCHIMICA ET COSMOCHIMICA ACTA(2024)

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摘要
Indium (In) is a critical element for electronics and catalysis industries and a volatile metal during planet accretion. Indium isotopes can be used to study cosmochemical and geochemical processes, but no equilibrium indium isotope fractionation factor is available, which restricts our knowledge of indium enrichment and incorporation during geological processes. Here, we investigate the reduced partition function ratios (10(3)ln beta) of In-115/In-113 in indium-bearing minerals using first-principles calculations. The results show that 10(3)ln beta decreases in the following sequence of dzhalindite > laforetite > roquesite > cadmoindite > Ag-Sn-In-doped sphalerite approximate to Cu-In-doped sphalerite approximate to Cu-Sn-In-doped sphalerite > yixunite > indite > damiaoite > native indium. We found that chemical composition may affect indium isotope fractionation factor in indium-doped sphalerite with Zn/In from 4 to 80 and indium alloys by changing the length of indium bonds. Furthermore, the chemical composition is not only related to the bond length and coordination number (CN) of the target element but also to the electronegativity of other doped elements, which can influence equilibrium indium isotope fractionation. The variation in 103ln beta of indium-doped sphalerites and independent minerals predicts measurable isotopic differences between indium-bearing minerals. The equilibrium indium isotope fractionation factors calculated in this study provide important guides for the potential applications of indium isotopes in geological processes.
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关键词
First-principles calculations,Indium substitution,Indium isotopes,Equilibrium isotope fractionation factors
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