Oxygen isotope fractionation between zircon and water: experimental determination and comparison with quartz-zircon calibrations

被引:13
作者
Krylov, DP
Zagnitko, VN
Hoernes, S
Lugovaja, IP
Hoffbauer, R
机构
[1] Russian Acad Sci, Inst Precambrian Geol & Geochronol, St Petersburg 199034, Russia
[2] UAS, Inst Geochem Mineral & Ore Format, UA-252142 Kiev, Ukraine
[3] Univ Bonn, Inst Mineral & Petrol, D-53115 Bonn, Germany
关键词
oxygen isotopes; zircon water fractionation; quartz; geothermometry;
D O I
10.1127/0935-1221/2002/0014-0849
中图分类号
P57 [矿物学];
学科分类号
070901 ;
摘要
Oxygen isotope fractionation between synthesised zircon and water has been experimentally quantified at 700, 800, 900, and 1000 degreesC. The results are interpolated by: Delta(zrn-H2O) = -3.70 + 2.74 +/- 0.19 x(2), where x = 10(3)/T (K). Combined with the fractionation between quartz and water (Bottinga & Javoy, 1973) this yields: Delta(qtz-zrn) = 1.36 x(2). Theoretical evaluations of the reduced partition function ratios for zircon and two (alpha- and beta-) modifications of quartz are expressed in terms of the following polynomials: 1000 lnf(zm) = 8.3 3 06 x(2) + 1.9402 x - 0.6896 (400 < T < 1100 degreesC) 1000 lnf(alpha-qtz) = 7.8963 x(2) + 7.4091 x - 3.6015 (200degreesC < T < alpha-quartz stability field) 1000 lnf(beta-qtz) = 9.3362 x(2) + 2.4514 x - 0.7844 (beta-quartz stability field up to 1100 degreesC). These expressions are in excellent agreement both with the experimentally derived factors of oxygen isotope fractionation for beta-quartz and zircon, and the incremental calibrations for alpha-quartz and zircon (Hoffbauer et al., 1994). The effect of alpha-beta-quartz transition on oxygen isotope fractionation implies, that those calculations, anchored to the theoretically evaluated reduced partition function ratios of quartz (e.g., Zheng, 1993), can predict fractionations only within the P-T stability field of the respective modification of quartz (i.e. alpha-quartz).
引用
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页码:849 / 853
页数:5
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