Multi-scale magnetic mapping of serpentinite carbonation
Date
2017-11-30Author
Tominaga, Masako
Concept link
Beinlich, Andreas
Concept link
Lima, Eduardo A.
Concept link
Tivey, Maurice A.
Concept link
Hampton, Brian A.
Concept link
Weiss, Benjamin
Concept link
Harigane, Yumiko
Concept link
Metadata
Show full item recordCitable URI
https://hdl.handle.net/1912/9406As published
https://doi.org/10.1038/s41467-017-01610-4DOI
10.1038/s41467-017-01610-4Abstract
Peridotite carbonation represents a critical step within the long-term carbon cycle by sequestering volatile CO2 in solid carbonate. This has been proposed as one potential pathway to mitigate the effects of greenhouse gas release. Most of our current understanding of reaction mechanisms is based on hand specimen and laboratory-scale analyses. Linking laboratory-scale observations to field scale processes remains challenging. Here we present the first geophysical characterization of serpentinite carbonation across scales ranging from km to sub-mm by combining aeromagnetic observations, outcrop- and thin section-scale magnetic mapping. At all scales, magnetic anomalies coherently change across reaction fronts separating assemblages indicative of incipient, intermittent, and final reaction progress. The abundance of magnetic minerals correlates with reaction progress, causing amplitude and wavelength variations in associated magnetic anomalies. This correlation represents a foundation for characterizing the extent and degree of in situ ultramafic rock carbonation in space and time.
Description
© The Author(s), 2017. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Nature Communications 8 (2017): 1870, doi:10.1038/s41467-017-01610-4.
Collections
Suggested Citation
Nature Communications 8 (2017): 1870The following license files are associated with this item: