Coupled Microstructural EBSD and LA-ICP-MS Trace Element Mapping of Pyrite Constrains the Deformation History of Breccia-Hosted IOCG Ore Systems

Author:

King Samuel Anthony1ORCID,Cook Nigel John1ORCID,Ciobanu Cristiana Liana1,Ehrig Kathy12ORCID,Campo Rodriguez Yuri Tatiana13ORCID,Basak Animesh4ORCID,Gilbert Sarah4ORCID

Affiliation:

1. School of Chemical Engineering, The University of Adelaide, Adelaide, SA 5005, Australia

2. BHP Olympic Dam, 10 Franklin Street, Adelaide, SA 5000, Australia

3. Geosciences Institute, Graduate Program in Geology, University of Brasília, Brasília 70910-900, DF, Brazil

4. Adelaide Microscopy, The University of Adelaide, Adelaide, SA 5005, Australia

Abstract

Electron backscatter diffraction (EBSD) methods are used to investigate the presence of microstructures in pyrite from the giant breccia-hosted Olympic Dam iron–oxide copper gold (IOCG) deposit, South Australia. Results include the first evidence for ductile deformation in pyrite from a brecciated deposit. Two stages of ductile behavior are observed, although extensive replacement and recrystallization driven by coupled dissolution–reprecipitation reaction have prevented widespread preservation of the earlier event. Laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS) element maps of pyrite confirm that many pyrite grains display compositional zoning with respect to As, Co, and Ni, but that the zoning is often irregular, patchy, or otherwise disrupted and are readily correlated with observed microstructures. The formation of ductile microstructures in pyrite requires temperatures above ~260 °C, which could potentially be related to heat from radioactive decay and fault displacements during tectonothermal events. Coupling EBSD methods with LA-ICP-MS element mapping allows a comprehensive characterization of pyrite textures and microstructures that are otherwise invisible to conventional reflected light or BSE imaging. Beyond providing new insights into ore genesis and superimposed events, the two techniques enable a detailed understanding of the grain-scale distribution of minor elements. Such information is pivotal for efforts intended to develop new ways to recover value components (precious and critical metals), as well as remove deleterious components of the ore using low-energy, low-waste ore processing methods.

Funder

Australian Research Council

BHP Olympic Dam

Publisher

MDPI AG

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