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July 21, 2026Acta Geochimica0 citationsOpen Access

Comparisons between non-destructive and destructive XRF chemical analyses on an extensive group of vitreous and aphyric volcanic rocks from the Jemez Mountains region, New Mexico, USA

FGFraser GoffMSM. Steven ShackleyDBDavid Broxton

Key Points

  • This research aims to evaluate the effectiveness of non-destructive EDXRF versus destructive WDXRF methods for analyzing volcanic rocks.
  • Analyzed four groups of volcanic rocks from the Jemez Mountains region using both EDXRF and WDXRF methods.
  • Assessed major and trace elements to compare analytical results across various rock compositions.
  • Focused on the performance of EDXRF in geological contexts where sample destruction is typically necessary.
  • Major element analyses are comparable between EDXRF and WDXRF for glassy silicic rocks, with minor differences (≤ 2 wt% SiO2).
  • Less accuracy in EDXRF for more mafic compositions, underestimating MgO and P2O5.
  • Trace element analyses for Ba, Nb, Rb, Sr, Y, and Zr show good agreement (usually ± 10% on ppm basis) across various rock types.

Abstract

Abstract Non-destructive surface exposure (EDXRF) analyses for major and trace elements are widely used in archaeological investigations to characterize sources of artifacts and stone tools because these methods provide geochemical information on objects that usually cannot be destroyed. However, EDXRF methods are not used in most geological investigations where sample destruction is the norm. Thus, a variety of destructive whole rock chemical methods are relied upon for geoscientific research within geochemistry, volcanology, petrology, etc. In this paper, we examine the utility of benchtop EDXRF as a rapid and relatively inexpensive analytical method to correlate volcanic rocks in a variety of geological and archaeological situations and investigations. We compare EDXRF and WDXRF analytical results on four groups of Late Neogene through Quaternary volcanic rocks from the Jemez Mountains region: 1) Cerro del Medio obsidian, rhyolite, and pumice, 2) upper flow units of Tshirege Member, Bandelier Tuff, 3) porphyritic lavas from Rendija Canyon rhyodacite and pumiceous beds in the Puye Formation, and 4) vitreous and aphyric dacites and a basalt from various locations. Standard major element analyses by EDXRF and WDXRF methods are relatively comparable for glassy silicic rocks like rhyolite (e.g., ≤ 2 wt% difference in SiO 2 , ≤ 3 wt% difference in CaO, etc.) but less so for more mafic compositions because the former method underestimates the contents of MgO and P 2 O 5 . Problems with major element EDXRF analyses also occur with vesiculated pumice and rough, highly porphyritic specimens because sample surfaces are porous and/or uneven. On the other hand, we compared nine trace elements (Ba, Nb, Pb, Rb, Sr, Th, Y, Zr, and Zn) analyzed by both methods and results are generally comparable (usually ± 10% on ppm basis) for most rock compositions and textures. The most reliable trace elemental comparisons for all rocks we analyzed were with Ba, Nb, Rb, Sr, Y, and Zr.

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Cite This Study

Goff et al. (2026) studied this question.

synapsesocial.com/papers/6a5f0bc586a4235cc1619618https://doi.org/10.1007/s11631-026-00894-y
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