Correlation‐Driven Magnetic Frustration and Insulating Behavior of TiF3

Author:

Fernando Gayanath W.1ORCID,Sheets Donal1ORCID,Hancock Jason1ORCID,Ernst Arthur23ORCID,Geilhufe Richard Matthias4ORCID

Affiliation:

1. Department of Physics University of Connecticut Storrs Connecticut 06269 USA

2. Max Planck Institute of Microstructure Physics Weinberg 2 D-06120 Halle Germany

3. Institute for Theoretical Physics Johannes Kepler University Altenberger Strasse 69 4040 Linz Austria

4. Department of Physics Chalmers University of Technology 412 96 Göteborg Sweden

Abstract

The halide perovskite TiF3, renowned for its intricate interplay between structure, electronic correlations, magnetism, and thermal expansion, is investigated. Despite its simple structure, understanding its low‐temperature magnetic behavior has been a challenge. Previous theories propose antiferromagnetic ordering. In contrast, experimental signatures for an ordered magnetic state are absent down to 10 K. The current study has successfully reevaluated the theoretical modeling of TiF3, unveiling the significance of strong electronic correlations as the key driver for its insulating behavior and magnetic frustration. In addition, frequency‐dependent optical reflectivity measurements exhibit clear signs of an insulating state. The analysis of the calculated magnetic data gives an antiferromagnetic exchange coupling with a net Weiss temperature of order 25 K as well as a magnetic response consistent with a S = 1/2 local moment per Ti3+. Yet, the system shows no susceptibility peak at this temperature scale and appears free of long‐range antiferromagnetic order down to 1 K. Extending ab initio modeling of the material to larger unit cells shows a tendency for relaxing into a noncollinear magnetic ordering, with a shallow energy landscape between several magnetic ground states, promoting the status of this simple, nearly cubic perovskite structured material as a candidate spin liquid.

Funder

Vetenskapsrådet

Division of Materials Research

Austrian Science Fund

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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