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Constraints from the dehydration of antigorite on high-conductivity anomalies in subduction zones

  • Duojun Wang
  • , Xiaowei Liu
  • , Tao Liu
  • , Kewei Shen
  • , David O. Welch
  • , Baosheng Li
  • University of Chinese Academy of Sciences
  • Stony Brook University
  • Lanzhou University
  • Brookhaven National Laboratory Condensed Matter Physics and Materials Science Department

Research output: Contribution to journalArticlepeer-review

23 Scopus citations

Abstract

Regions with high electrical conductivities in subduction zones have attracted a great deal of attention. Determining the exact origin of these anomalies could provide critical information about the water storage and cycling processes during subduction. Antigorite is the most important hydrous mineral within deep subduction zones. The dehydration of antigorite is believed to cause high-conductivity anomalies. To date, the effects of dehydration on the electrical conductivity of antigorite remain poorly understood. Here, we report new measurements of the electrical conductivity of both natural and hot-pressed antigorite at pressures of 4 and 3 GPa, respectively, and at temperatures reaching 1073 K. We observed significantly enhanced conductivities when the antigorite was heated to temperatures beyond its thermodynamic stability field. Sharp increases in the electrical conductivity occurred at approximately 848 and 898 K following the decomposition of antigorite to forsterite, enstatite and aqueous fluids. High electrical conductivities reaching 1 S/m can be explained by the presence of an interconnected network of conductive aqueous fluids. Based on these results for the electrical conductivity of antigorite, we conclude that high-conductivity regions associated with subduction zones can be attributed to dehydration-induced fluids and the formation of interconnected networks of aqueous fluids during the dehydration of antigorite.

Original languageEnglish
Article number16893
JournalScientific Reports
Volume7
Issue number1
DOIs
StatePublished - Dec 1 2017

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