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Argon retention properties of silicate glasses and implications for 40Ar/39Ar age and noble gas diffusion studies
Authors:Garrett?B.?Hazelton,Gary?Axen  author-information"  >  author-information__contact u-icon-before"  >  mailto:gaxen@ess.ucla.edu"   title="  gaxen@ess.ucla.edu"   itemprop="  email"   data-track="  click"   data-track-action="  Email author"   data-track-label="  "  >Email author,Oscar?Lovera
Affiliation:(1) Department of Earth and Space Sciences, University of California Los Angeles, 595 Charles Young Dr. E, Los Angeles, CA 90095, USA;
Abstract:Sized aggregates of glasses (47–84 wt% SiO2) were fused from igneous-derived cohesive fault rock and igneous rock, and step-heated from ~400 to >1,200 °C to obtain their 39Ar diffusion properties (average E=33,400 cal mol?1; D o=4.63×10?3 cm2 s?1). At T<~1,000 °C, glasses containing <~69 wt% SiO2 and abundant network-forming cations (Ca, Fe, Mg) reveal moderate to strong non-linear increases in D and E, reflecting structural modifications as the solid transitions to melt. Extrapolation of these Arrhenius properties down to typical geologic T-t conditions could result in a 1.5 log10 unit underestimation in the diffusion rate of Ar in similar materials. Numerical simulations based upon the diffusion results caution that some common geologic glasses will likely yield 40Ar/39Ar cooling ages rather than formation ages. However, if cooling rates are sufficiently high, ambient temperatures are sufficiently low (e.g., <65–175 °C), and coarse particles (e.g., radius (r) >~1 mm) are analyzed, glasses with compositions similar to ours may preserve their formation ages.
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