Temperature-Dependent Magnetization, Raman Scattering, and X-Ray Diffraction Study of Phase Transitions in Layered Multiferroic CuCrP<sub>2</sub>S<sub>6</sub>
ORAL
Abstract
Functional van der Waals layered materials exhibit interesting phenomena such as magnetism and ferroelectricity and have been proposed for use in next-generation nanoscale devices. Metal thiophosphates are an interesting class of these materials that contain a common structural framework where altering the cation can induce different types of ferroic ordering, including ferroelectricity and magnetism. The compound CuCrP2S6 is a promising 2D material that evinces multiferroic behavior where the Cu+ and Cr+3 cations are responsible for antiferroelectric (AFE) and antiferromagnetic ordering, respectively, which are predicted to couple. Here, we use magnetization, X-ray diffraction, and Raman spectroscopy to map out these phase transitions. The AFE phase transition is complex and shows a gradual transition to complete antipolar order with an intermediate quasi-antipolar step. X-ray diffraction studies reveal evidence for negative thermal expansion which we argue is tied to magnetic frustration. This is accompanied by a drastic reduction in rotational and translational mode frequencies of the anion groups in CuCrP2S6. Our temperature-dependent structural data provides an important reference for subsequent research into this promising 2D multiferroic material.
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Presenters
Michael Susner
Air Force Research Laboratory, Air Force Research Lab - WPAFB
Authors
Michael Susner
Air Force Research Laboratory, Air Force Research Lab - WPAFB
Rahul Rao
Materials and Manufacturing Directorate, Air Force Research Laboratory, Air Force Research Lab - WPAFB
Bing Lv
The University of Texas at Dallas, Department of Physics, University of Texas at Dallas, Physics, The University of Texas at Dallas, Department of Physics, The University of Texas at Dallas, University of Texas at Dallas
Benjamin S Conner
Air Force Research Laboratory, Air Force Research Lab - WPAFB