HR: 1330h
AN: V12A-0565 [PDF]
TI: Oxygen Isotope Variation Within a Quaternary, Caldera-forming, Phonolitic Eruptive Sequence; the Diego
Hern\'{a}ndez Formation, Tenerife, Canary Islands (Spain)
AU: * Hickes, H J
EM: vulcan@mail.wsu.edu
AF: Washington State University, Department of Geology
P. O. Box 642812, Pullman, WA 99164-2812 United States
AU: Larson, P B
AF: Washington State University, Department of Geology
P. O. Box 642812, Pullman, WA 99164-2812 United States
AU: Wolff, J A
AF: Washington State University, Department of Geology
P. O. Box 642812, Pullman, WA 99164-2812 United States
AU: Olin, P
AF: Washington State University, Department of Geology
P. O. Box 642812, Pullman, WA 99164-2812 United States
AB:
Much of the work done on oxygen isotopes in volcanic rocks has been based on analyses of whole rock or multiple crystal
aliquots, inherently discounting the importance of heterogeneity. Recently, due to advances in technology and the
recognition of small-scale chemical disequilibria in magmatic systems, it has proven valuable to measure variations among
individual grains to examine the evolution of these systems. Here, we present the results of both single and multi-crystal
feldspar oxygen isotope analyses (1$\sigma$ $<$ 0.1 $\permil$) from phonolitic eruptive units of the Diego Hern\'{a}ndez
Formation (DHF) as part of an on-going study of the evolution of the Las Ca\~{n}adas caldera complex on Tenerife.
$\delta$$^{18}$O (VSMOW) values of feldspar range from 4.7 to 6.7 $\permil$ (slightly lower than previously reported) and
show a positive correlation with average crystal size (mg) in units that display a range of oxygen isotope values. For
example, one unit shows a linear variation of feldspar $\delta$$^{18}$O values that range from 4.7 to 6.4 $\permil$, and
these ratios are positively correlated with average phenocryst size over a range of 0.7 to 3.6 mg. Overall, intra-unit
feldspar $\delta$$^{18}$O values vary by as much as $\sim$2 $\permil$ and are lower than those predicted by fractionation of
a basanitic parental magma. Additionally, $\delta$$^{18}$O values show no coherent relationship with incompatible trace
element abundances, an indication that the oxygen isotopic ratios are being controlled by neither fractionation nor recharge
of the system by basaltic injections. However, the largest variation in oxygen isotope ratios is found in the most
differentiated units, consistent with earlier suggestions that the most highly evolved phonolites may contain a component of
hydrothermally-altered wall rock. We propose that oxygen isotope variation in Tenerife phonolites is being controlled by
variable amounts of assimilation of hydrothermally-altered syenite country rock ($\delta$$^{18}$O 0.1 - 5.8 $\permil$) and
that timescales between assimilation and eruption can be constrained by the oxygen isotope disequilibria shown between larger
and smaller feldspar phenocrysts.
DE: 1040 Isotopic composition/chemistry
DE: 1065 Trace elements (3670)
DE: 1749 Volcanology, geochemistry, and petrology
DE: 3600 MINERALOGY AND PETROLOGY (replaces
DE: 3640 Igneous petrology
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2003 Fall Meeting