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DOE OSTI · 2896338

Complex orders and chirality in the classical Kitaev-Γ model

Abstract

It is well recognized that the low-energy physics of many Kitaev materials is governed by two dominant energy scales, the Ising-type Kitaev coupling 𝐾 and the symmetric off-diagonal Γ coupling. An understanding of the interplay between these two scales is therefore the natural starting point toward a quantitative description that includes subdominant perturbations that are inevitably present in real materials. This study focuses on the classical 𝐾−Γ model on the honeycomb lattice, with a specific emphasis on the region 𝐾< 0 and Γ > 0 , which is the most relevant for the available materials and which remains enigmatic in both quantum and classical limits, despite much effort. We employ large-scale Monte Carlo simulations on specially designed finite-size clusters and unravel the presence of a complex multisublattice magnetic order in a wide region of the phase diagram, whose structure is characterized in detail. We show that this order can be quantified in terms of a coarse-grained scalar-chirality order, featuring a counterrotating modulation on the two spin sublattices. Here, we also provide a comparison to previous studies and discuss the impact of quantum fluctuations on the phase diagram.

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BibTeXRIS

Stavropoulos, P. Peter [University of Minnesota, Minneapolis, MN (United States)], Yang, Yang [University of Minnesota, Minneapolis, MN (United States)], Rousochatzakis, Ioannis [Loughborough University (United Kingdom)] (ORCID:0000000255178389), Perkins, Natalia B. [University of Minnesota, Minneapolis, MN (United States); Technical University of Munich, Garching (Germany)] (ORCID:0000000290331860). 2024-12-04. Complex orders and chirality in the classical Kitaev-Γ model. https://doi.org/10.1103/physrevb.110.214406

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