Synthesis and Anisotropic Magnetic Properties of LiCrTe$_2$ Single Crystals with a Triangular-Lattice Antiferromagnetic Structure
Catherine Witteveen, Elisabetta Nocerino, Sara A. L\'opez-Paz, Harald, O. Jeschke, Vladimir Y. Pomjakushin, Martin M{\aa}nsson, Fabian O. von Rohr

TL;DR
This study synthesizes LiCrTe$_2$ single crystals, characterizes their anisotropic magnetic properties, and reveals a high-temperature antiferromagnetic order with potential for spintronic applications.
Contribution
It reports a new synthesis method for LiCrTe$_2$ single crystals and provides detailed magnetic structure and anisotropy analysis, advancing understanding of triangular-lattice antiferromagnets.
Findings
LiCrTe$_2$ crystallizes in a TlCdS$_2$-type structure.
Magnetic transition temperatures are 144 K and 148 K.
The magnetic structure is A-type antiferromagnetic with moments along the c-axis.
Abstract
We report on the synthesis of LiCrTe single crystals and on their anisotropic magnetic properties. We have obtained these single crystals by employing a Te/Li-flux synthesis method. We find LiCrTe to crystallize in a TlCdS -type structure with cell parameters of = 3.9512(5) \r{A} and = 6.6196(7) \r{A} at = 175 K. The content of lithium in these crystals was determined to be near stoichiometric by means of neutron diffraction. We find a pronounced magnetic transition at = 144 K and = 148 K, respectively. These transition temperatures are substantially higher than earlier reports on polycrystalline samples. We have performed neutron powder diffraction measurements that reveal that the long-range low-temperature magnetic structure of single crystalline LiCrTe is an A-type antiferromagnetic (AFM) structure. Our DFT…
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Taxonomy
TopicsAdvanced Condensed Matter Physics · Magnetic and transport properties of perovskites and related materials · Iron-based superconductors research
