Systematic extraction of crystal electric-field effects and quantum magnetic model parameters in triangular rare-earth magnets
Christopher A. Pocs, Peter E. Siegfried, Jie Xing, Athena S. Sefat,, Michael Hermele, Bruce Normand, Minhyea Lee

TL;DR
This paper presents a comprehensive method to extract crystal electric-field parameters and effective spin models in triangular rare-earth magnets, exemplified by CsYbSe2, combining experimental techniques to clarify magnetic anisotropy and frustration.
Contribution
It introduces a novel approach to unambiguously determine CEF parameters from experimental data, enabling accurate modeling of magnetic properties in rare-earth triangular lattice materials.
Findings
Successful extraction of Stevens-operator coefficients for CsYbSe2.
Identification of van Vleck contributions affecting Zeeman splitting.
Validation of an effective spin-1/2 model for the material.
Abstract
A primary goal at the interface of theoretical and experimental quantum magnetism is the investigation of exotic spin states, most notably quantum spin liquids (QSLs). Magnetic rare-earth ions go beyond the straightforward paradigm of geometrical frustration in Heisenberg antiferromagnets by introducing competing energy scales, and in particular their strong spin-orbit coupling creates multiple split crystal electric-field (CEF) levels, leading to anisotropic effective spin models with intrinsic frustration. While rare-earth delafossites have a triangular-lattice geometry, and thus have gained recent attention as candidates for hosting spin-1/2 QSL physics, the reliable extraction of effective spin models from the initial many-parameter CEF spectrum is a hard problem. Using the example of CsYbSe2, we demonstrate the unambiguous extraction of the Stevens-operators coefficients dictating…
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