Insights into a Defective Potassium Sulfido Cobaltate: Giant Magnetic Exchange Bias, Ionic Conductivity, and Electrical Permittivity

Author:

Ghazanfari M. Reza1,Steinberg Simon2ORCID,Siemensmeyer Konrad3,Vrijmoed Johannes C.4,Tallu Mirko5,Dehnen Stefanie5ORCID,Thiele Günther16ORCID

Affiliation:

1. Fachbereich Biologie, Chemie, Pharmazie Freie Universität Berlin Fabeckstr. 34‐36 14195 Berlin Germany

2. Institut für Anorganische Chemie RWTH Aachen Landoltweg 1 52074 Aachen Germany

3. Helmholtz‐Zentrum Berlin für Materialien und Energie Hahn‐Meitner‐Platz 1 14109 Berlin Germany

4. Fachbereich Geowissenschaften Freie Universität Berlin Malteserstr. 74‐100 12249 Berlin Germany

5. Institute of Nanotechnology (INT) Karlsruhe Institute of Technology (KIT) Hermann‐von‐Helmholtz‐Platz 1 76344 Eggenstein‐Leopoldshafen Germany

6. Institut für Anorganische und Analytische Chemie Albert‐Ludwigs‐Universität Freiburg 79104 Freiburg Germany

Abstract

AbstractThe novel potassium sulfido cobaltate, K2[Co3S4] is introduced, with 25% vacancies of the cobalt positions within a layered anionic sublattice. The impedance and dielectric investigations indicate a remarkable ionic conductivity of 21.4 mS cm−1 at room temperature, which is in the range of highest ever reported values for potassium‐ions, as well as a high electrical permittivity of 2650 at 1 kHz, respectively. Magnetometry results indicate an antiferromagnetic structure with giant intrinsic exchange bias fields of 0.432 and 0.161 T at 3 and 20 K respectively, potentially induced by a combination of the interfacial effect of combined magnetic anionic and nonmagnetic cationic sublattices, as well as partial spin canting. The stability of the exchange bias behavior is confirmed by a training effect of less than 18% upon 10 hysteresis cycles. The semiconductivity of the material is determined, both experimentally and theoretically, with a bandgap energy of 1.68 eV. The findings render this material as a promising candidate for both, active electrode material in potassium‐ion batteries, and for spintronic applications.

Funder

Verband der Chemischen Industrie

Volkswagen Foundation

Publisher

Wiley

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