HR: 13:40h
AN: V43G-01 INVITED [Abstracts]
TI: Zircon U-Th and U-Pb Ages From Quaternary Silicic Volcanic and Plutonic Rocks, and Their Bearing on Granitoid Batholiths
AU: * Bacon, C R
EM: cbacon@usgs.gov
AF: USGS, 345 Middlefield Rd., Menlo Park, CA 94025, United States
AB:
In the ten years since publication of M. Reid et al.'s seminal paper on zircon ages from rhyolites (EPSL 150:2-39,
1997) >20 papers have appeared on SIMS 238U-230Th and 238U-206Pb geochronology
of zircon from silicic volcanic rocks, plutonic xenoliths, and young intrusions. In some cases, as well as for U-Pb
studies of Tertiary granitoids, plutonic samples are interpreted in the context of related volcanism. These
geochronologic data have advanced conceptual models of silicic magma genesis and pluton construction. Of
fundamental importance are discoveries that zircons in volcanic rocks typically pre-date eruption by 10's to 100's
of kyr and that multiple zircon populations are common; these crystals are "antecrysts" recycled from intrusive
rocks or crystal mush of the system that vented. Resolving such age differences is possible with U-Th at <300
ka but is challenging with U-Pb, where SIMS precision limits resolution of differences on the order of 100 kyr for
Pleistocene-Miocene zircons. Cathodoluminescence (CL) imaging of polished crystals guides beam placement
but leads to sampling bias that favors high-U regions. Thus, although model-age histograms and relative
probability plots identify zircon age populations, they are unlikely to accurately define relative abundances of age
groups. Microbeam analysis collects data for the entire volume sampled but only SIMS depth-profiling into crystal
faces can spatially resolve fine zones. ID-TIMS analysis of CL-imaged zircon fragments can improve U-Pb
precision. SIMS complements geochronology with trace element fingerprints of zircon growth environments and
enables Ti-in-zircon thermometry.
Literature examples illustrate recent findings: (1) rhyodacite lava at Crater Lake contains zircons derived from
late Pleistocene granodiorite represented by blocks ejected in the caldera-forming eruption; (2) zircons in Mount
St. Helens dacites grew at sub-eruption temperatures and pre-date eruptions by up to 250 kyr; (3) Miocene
plutons near Mount Rainier and the Colorado River were emplaced and crystallized in pulses over ~2-3-Myr
periods, some with coeval volcanics; and (4) Cretaceous batholiths in the Sierra Nevada and North Cascades
preserve evidence of assembly over as much as 10 Myr; individual samples contain zircons that crystallized
during intervals of >1 Myr. Zircon ages and wide-ranging trace element concentrations suggest crystallization
mainly in differentiated melt pockets in high-crystallinity magmas that may repeatedly freeze and thaw. Some
high-Th/U, incompatible-element rich, spongy textured zircons grew very late, in the presence of oxidizing fluid.
Not all zircons survive recycling into undersaturated magmas, in which zircon will dissolve given enough time,
depending on temperature and dissolved volatiles.
Recent zircon geochronologic results for volcanic and plutonic rocks lend credence to the "mush model" of
rhyolite genesis and batholith consolidation. Crystal-poor rhyolites and leucogranites are melts segregated by
compaction or gas-driven filter pressing from granitoid crystal mush emplaced incrementally in the middle to
upper crust and powered by basaltic magma repeatedly injected into the lower reaches of the mush column.
Balance between heat loss and basaltic influx determines whether the mush freezes or partially thaws at any
given time, blurs internal contacts in resulting plutons, and can produce large volumes of crystal-rich ignimbrite or
rapid separation and eruption of crystal-poor rhyolite. Lifetimes of the largest volcano-plutonic systems, such as
the Altiplano-Puna or Southern Rocky Mountains volcanic fields, are comparable to the ~10 Myr of the Tuolumne
Intrusive Suite.
DE: 1115 Radioisotope geochronology
DE: 1120 Isotopic disequilibrium dating
DE: 3618 Magma chamber processes (1036)
DE: 8428 Explosive volcanism
DE: 8439 Physics and chemistry of magma bodies
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2007 Fall Meeting