Engineering Biquadratic Interactions in Spin-1 Chains by Spin-1/2 Spacers
Yasser Saleem, Weronika Pasek, Marek Korkusinski, Moritz Cygorek, Pawel Potasz

TL;DR
This paper presents a method to engineer biquadratic interactions in spin-1 chains using spin-1/2 spacers, enabling control over quantum phases and realization of AKLT-like states in nanographene-based systems.
Contribution
It introduces a strategy to induce and tune biquadratic interactions in spin-1 chains via spin-1/2 spacers, facilitating the realization of exotic quantum states.
Findings
Controlled biquadratic interactions can be achieved by adjusting coupling ratios.
A quantum phase transition occurs at a critical ratio, changing the spin-liquid phase.
Nanographene chains can realize the required couplings for AKLT state approximation.
Abstract
Low-dimensional quantum systems host a variety of exotic states, such as symmetry-protected topological ground states in spin-1 Haldane chains. Real-world realizations of such states could serve as practical quantum simulators for quantum phases if the interactions can be controlled. However, many proposed models, such as the AKLT state, require unconventional forms of spin interactions beyond standard Heisenberg terms, which do not naturally emerge from microscopic (Coulomb) interactions. Here, we demonstrate a general strategy to induce a biquadratic term between two spin-1 sites and to tune its strength by placing pairs of spin-1/2 spacers in between them. is controlled by the ratio between Heisenberg couplings to and in between the spacer spins. Increasing this ratio increases the magnitude of and decreases the correlation length of edge states, but at a…
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Taxonomy
TopicsTopological Materials and Phenomena · Quantum many-body systems · Advanced Condensed Matter Physics
