Anisotropy-induced spin disorder in intergrown, ferrimagnetic Fe7S8 polytypes

Author:

Firlus Alexander1ORCID,Schawe Jürgen E. K.12ORCID,Weidler Peter G.3ORCID,Charilaou Michalis4ORCID,Löffler Jörg F.1ORCID,Gehring Andreas U.1ORCID

Affiliation:

1. Laboratory of Metal Physics and Technology, Department of Materials, ETH Zurich, 8093 Zurich, Switzerland

2. Mettler-Toledo GmbH, Analytical, 8606 Nänikon, Switzerland

3. Institute of Functional Interfaces, Karlsruhe Institute of Technology, 76344 Eggenstein-Leopoldshafen, Germany

4. Department of Physics, University of Louisiana at Lafayette, Lafayette, Louisiana 70504, USA

Abstract

The monosulfides of the pyrrhotite omission series ([Formula: see text]) are important remanence carriers for paleomagnetic reconstruction of the Earth's crust and extraterrestrial materials. The ferrimagnetic [Formula: see text] polytypes are the endmembers, and their stacking modulations of full and vacant layers generate different magnetic anisotropy properties due to the cation-vacancy configurations. In this study, intergrown long-range ordered polytypes with four- and threefold modulation, i.e., 4C and 3C pyrrhotite, were prepared in a diffusion-driven process by quenching of a natural pyrrhotite crystal with randomized vacancies. In addition, a third constituent with coherence lengths of a few nanometers, denoted 3C*, was found that exhibits spin-glass behavior at about 10 K due to local magnetic anisotropies arising from vacancy-density variations. The concomitant occurrence of this nano-scale constituent with spin disorder and the long-range ordered polytypes indicate competitive diffusion-driven processes during [Formula: see text] formation. Such information provides insight into the provenance and genesis of ferrimagnetic pyrrhotite in Earth and extraterrestrial systems and in a broader sense into vacancy-induced materials.

Funder

ETH Zurich

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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