Anomalous thermodynamics of a quantum spin system with large residual entropy
J. Richter, J. Schulenburg, D. V. Dmitriev, V. Ya. Krivnov, J. Schnack

TL;DR
This paper investigates the anomalous thermodynamic behavior of a quantum spin system with large residual entropy at a critical point, using exact diagonalization and Lanczos methods to analyze finite-size effects and the influence of spin quantum number and magnetic field.
Contribution
It provides a detailed finite-size analysis of the quantum sawtooth spin chain near the flat-band transition point, highlighting the role of spin quantum number and magnetic field in thermodynamic properties.
Findings
Large residual entropy at the transition point for spin-1/2.
Extremely small finite-size effects for spin-1/2, indicating near thermodynamic limit behavior.
Enhanced magnetocaloric effect influenced by magnetic field.
Abstract
In contrast to strongly frustrated classical systems, their quantum counterparts typically have a non-degenerate ground state. A counterexample is the celebrated Heisenberg sawtooth spin chain with ferromagnetic zigzag bonds and competing antiferromagnetic basal bonds . At a quantum phase transition point , this model exhibits a flat one-magnon excitation band leading to a massively degenerate ground-state manifold which results in a large residual entropy. Thus, for the spin-half model, the residual entropy amounts to exactly one half of its maximum value . In the present paper we study in detail the role of the spin quantum number and the magnetic field in the parameter region around the transition (flat-band) point. For that we use full exact diagonalization up to lattice sites and the finite-temperature…
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