Structural transition, spontaneous formation of strong singlet dimers and metamagnetism in $S=3/2$ magnetoelastic spin chains
C. J. Gazza, A. A. Aligia, A. O. Dobry, G. L. Rossini, D. C. Cabra

TL;DR
This paper investigates a one-dimensional $S=3/2$ spin chain with magnetoelastic coupling, revealing a first-order transition to a phase with alternating ferromagnetic and antiferromagnetic couplings, exhibiting magnetization plateaus and metamagnetism.
Contribution
It uncovers a novel first-order transition and a highly distorted phase with weakly ferromagnetic couplings in $S=3/2$ magnetoelastic chains, supported by DMRG and analytical methods.
Findings
Identification of a first-order transition driven by spin-phonon coupling.
Discovery of a phase with alternating FM-AFM couplings and singlet dimers.
Observation of magnetization plateaus and metamagnetic jumps in the new phase.
Abstract
We study a one-dimensional antiferromagnetic-elastic model with magnetic ions having spin . By extensive DMRG computations and complementary analytical methods, we uncover a first-order transition from a homogeneous or weakly-dimerized phase (a situation that could be similar to the well known spin-Peierls effect) to a highly distorted phase, driven by the spin-phonon coupling . The striking characteristic of the second phase, present at large , is the appearance of weakly ferromagnetic (FM) couplings alternating with strong antiferromagnetic (AFM) ones (we dub it FM-AFM phase) with a ground state close to a direct-product state of singlet dimers sitting on the AFM bonds. The behavior of the spin gap in both phases is studied by DMRG computation and contrasted with bosonization predictions and perturbation theory around the direct product of dimers. In…
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Taxonomy
TopicsMagnetism in coordination complexes · Magnetic Properties and Applications
