Integrable models and quantum spin ladders: comparison between theory and experiment for the strong coupling ladder compounds
M. T. Batchelor, X.-W. Guan, N. Oelkers, Z. Tsuboi

TL;DR
This paper analyzes integrable spin ladder models using exact methods, compares theoretical predictions with experimental data for strong coupling compounds, and explores rich quantum phase diagrams including critical points and magnetization plateaus.
Contribution
It provides exact thermodynamic solutions for integrable spin ladder models and applies these to real compounds, revealing detailed phase diagrams and critical behaviors.
Findings
Identification of three quantum phases in the strong coupling spin-1/2 ladder
Exact critical fields and behaviors derived from Thermodynamic Bethe Ansatz
Observation of magnetization plateaus and quantum phase transitions in the models
Abstract
(abbreviated) This article considers recent advances in the investigation of the thermal and magnetic properties of integrable spin ladder models and their applicability to the physics of real compounds. The ground state properties of the integrable two-leg spin-1/2 and the mixed spin-(1/2,1) ladder models at zero temperature are analyzed by means of the Thermodynamic Bethe Ansatz. Solving the TBA equations yields exact results for the critical fields and critical behaviour. The thermal and magnetic properties of the models are investigated in terms of the recently introduced High Temperature Expansion method, which is discussed in detail. It is shown that in the strong coupling limit the integrable spin-1/2 ladder model exhibits three quantum phases: (i) a gapped phase in the regime , (ii) a fully polarised phase for , and (iii) a Luttinger liquid magnetic phase in…
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