Differentiating between Inherited and Autocrystic Zircon in Granitoids

Author:

Olierook Hugo K H12,Kirkland Christopher L12,Szilas Kristoffer3,Hollis Julie A4,Gardiner Nicholas J56,Steenfelt Agnete7ORCID,Jiang Qiang1ORCID,Yakymchuk Chris8,Evans Noreen J12,McDonald Bradley J1

Affiliation:

1. Timescales of Mineral Systems, Centre for Exploration Targeting–Curtin Node, School of Earth and Planetary Sciences, Curtin University, GPO Box U1987, Perth, WA 6845, Australia

2. John de Laeter Centre, Curtin University, GPO Box U1987, Perth, WA 6845, Australia

3. Department of Geosciences and Natural Resource Management, University of Copenhagen, Øster Voldgade 10, Copenhagen 1350, Denmark

4. Department of Geology, Ministry of Mineral Resources, Government of Greenland, Nuuk, PO Box 930, Greenland 3900, UK

5. School of Earth and Environmental Sciences, University of St Andrews, St Andrews KT16 9AL, UK

6. School of Earth, Atmosphere and Environment, Monash University, Melbourne, VIC 3800, Australia

7. Geological Survey of Denmark and Greenland, Øster Voldgade 10, Copenhagen K 1350, Denmark

8. Department of Earth and Environmental Sciences, University of Waterloo, Waterloo, ON N2L 3G1, Canada

Abstract

Abstract Inherited zircon, crystals that did not form in situ from their host magma but were incorporated from either the source region or assimilated from the wall-rock, is common but can be difficult to identify. Age, chemical and/or textural dissimilarity to the youngest zircon fraction are the primary mechanisms of distinguishing such grains. However, in Zr-undersaturated magmas, the entire zircon population may be inherited and, if not identifiable via textural constraints, can lead to erroneous interpretation of magmatic crystallization age and magma source. Here, we present detailed field mapping of cross-cutting relationships, whole-rock geochemistry and zircon textural, U–Pb and trace element data for trondhjemite, granodiorite and granite from two localities in a complex Archean gneiss terrane in SW Greenland, which reveal cryptic zircon inheritance. Zircon textural, U–Pb and trace element data demonstrate that, in both localities, trondhjemite is the oldest rock (3011 ± 5 Ma, 2σ), which is intruded by granodiorite (2978 ± 4 Ma, 2σ). However, granite intrusions, constrained by cross-cutting relationships as the youngest component, contain only inherited zircon derived from trondhjemite and granodiorite based on ages and trace element concentrations. Without age constraints on the older two lithologies, it would be tempting to consider the youngest zircon fraction as recording crystallization of the granite but this would be erroneous. Furthermore, whole-rock geochemistry indicates that the granite contains only 6 µg g–1 Zr, extremely low for a granitoid with ∼77 wt% SiO2. Such low Zr concentration explains the lack of autocrystic zircon in the granite. We expand on a differentiation tool that uses Th/U ratios in zircon versus that in the whole-rock to aid in the identification of inherited zircon. This work emphasizes the need for field observations, geochemistry, grain characterization, and precise geochronology to accurately determine igneous crystallization ages and differentiate between inherited and autocrystic zircon.

Funder

Ministry of Mineral Resources, Government of Greenland

Australian Education Investment Fund program

Publisher

Oxford University Press (OUP)

Subject

Geochemistry and Petrology,Geophysics

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