Self‐Reversed Magnetization in Sediments Caused by Greigite Alteration

Author:

Chang Liao12ORCID,Pei Zhaowen1ORCID,Xue Pengfei1,Wang Shishun13ORCID,Wang Zhaoping1ORCID,Krijgsman Wout4ORCID,Dekkers Mark J.4ORCID

Affiliation:

1. Laboratory of Orogenic Belts and Crustal Evolution School of Earth and Space Sciences Peking University Beijing China

2. Laboratory for Marine Geology Qingdao National Laboratory for Marine Science and Technology Qingdao China

3. Now at Key Laboratory of Submarine Geosciences Second Institute of Oceanography Ministry of Natural Resources Hangzhou China

4. Paleomagnetic Laboratory Fort Hoofddijk Department of Earth Sciences Utrecht University Utrecht The Netherlands

Abstract

AbstractMultipolarity remanence in greigite‐bearing sediments has long been recognized, but the cause of this anomalous remanence behavior is not well understood. Here, we use electron microscopic and magnetic analyses to investigate the origin of such multipolarity in Miocene greigite‐bearing sediments from the Pannonian Basin (Hungary). We find a magnetic softening and partial transformation of iron sulfides to magnetite and pyrrhotite from “single‐polarity” to “multi‐polarity” samples. The inward alteration of sulfide grains is topotactic and is size‐dependent with higher alteration in smaller grains. We propose a multi‐phase self‐reversal chemical remanent magnetization (CRM) mechanism in altered greigite: the neoformed magnetite/pyrrhotite shell acquires a CRM coupled in the opposite direction to the primary CRM of the greigite core, likely through magnetostatic interactions or interfacial exchange interactions between the closely contacting core and shell. This new greigite self‐reversal model can explain the commonly observed antiparallel polarities and has broad geochronological, tectonic and paleoenvironmental implications.

Funder

National Natural Science Foundation of China

Royal Society

Publisher

American Geophysical Union (AGU)

Subject

General Earth and Planetary Sciences,Geophysics

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