Interplay of dipoles and spins in $\kappa$-(BEDT-TTF)$_2X$, where $X=$ Hg(SCN)$_2$Cl, Hg(SCN)$_2$Br, Cu[N(CN)$_2$]Cl, Cu[N(CN)$_2$]Br, and Ag$_2$(CN)$_3$
A. C. Jacko, E. P. Kenny, and B. J. Powell

TL;DR
This study combines first principles calculations with empirical models to analyze the interplay of dipoles and spins in various ${ ext{kappa}-(BEDT-TTF)_2X}$ salts, revealing how dipolar order influences magnetic interactions and dimensionality.
Contribution
It provides a detailed quantitative analysis of dipolar and spin interactions in ${ ext{kappa}-(BEDT-TTF)_2X}$ salts, confirming the importance of dipoles and explaining differences between materials.
Findings
Dipoles are crucial for understanding the magnetic properties.
Mercuric salts have smaller inter-dimer hopping and quasi-one-dimensional dipolar behavior.
Dipolar order affects interdimer magnetic interactions and can induce quasi-one-dimensional magnetism.
Abstract
We combine first principles density functional calculations with empirical relationships for the Coulomb interactions in the `monomer' model of -(BEDT-TTF). This enables us to calculate the parameters for the model of coupled dipolar and spin degrees of freedom proposed by Hotta [Phys. Rev. B , 241104 (2010)], and Naka and Ishihara [J. Phys. Soc. Japan , 063707 (2010)]. In all materials studied, retaining only the largest interactions leads to a transverse field Ising model of the dipoles. This quantifies, justifies and confirms recent claims that the dipoles are of crucial importance for understanding these materials. We show that two effects are responsible for a range of behaviors found in the dipoles in different -(BEDT-TTF) salts. (i) The inter-dimer hopping, , which gives rise to the "transverse field" in the Ising model…
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