Field-driven quantum phase transitions in $S=1/2$ spin chains
Adam Iaizzi, Kedar Damle, Anders W. Sandvik

TL;DR
This paper investigates quantum phase transitions and metamagnetism in a 1D extended Heisenberg model, revealing conditions for magnetization jumps and analyzing quantum-critical scaling near the transition point.
Contribution
It demonstrates that metamagnetism can occur without geometric frustration or spin-anisotropy, and provides exact and numerical results on the critical parameters and scaling behavior.
Findings
Magnetization jumps occur for q > q_min, with q_min=2/9 exactly calculated.
Bound states of two magnons lead to instabilities causing metamagnetism.
Quantum-critical scaling near the transition shows crossover behavior influenced by a tricritical point.
Abstract
We study the magnetization process of a 1D extended Heisenberg model, the - model, as a function of an external magnetic field. In this model, represents the traditional antiferromagnetic Heisenberg exchange and is the strength of a competing four-spin interaction. Without external field, this system hosts a twofold-degenerate dimerized (valence-bond solid) state above a critical value where . The dimer order is destroyed and replaced by a partially polarized translationally invariant state at a critical field value. We find magnetization jumps (metamagnetism) between the partially polarized and fully polarized state for , where we have calculated exactly. For two magnons (flipped spins on a fully polarized background) attract and form a bound state. Quantum Monte Carlo studies confirm that the…
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