Magnetothermal Transport in Spin-Ladder Systems
Strongly Correlated Electrons
2015-06-05 v1
Abstract
We study a theoretical model for the magnetothermal conductivity of a spin-1/2 ladder with low exchange coupling (J≪ΘD) subject to a strong magnetic field B. Our theory for the thermal transport accounts for the contribution of spinons coupled to lattice phonon modes in the one-dimensional lattice. We employ a mapping of the ladder Hamiltonian onto an XXZ spin-chain in a weaker effective field B_{eff}=B-B_{0},whereB_{0}=(B_{c1}+B_{c2})/2correspondstohalf−fillingofthespinonband.Thisprovidesalow−energytheoryforthespinonexcitationsandtheircouplingtothephonons.Thecouplingofacousticlongitudinalphononstospinonsgivesrisetohybridizationofspinonsandphonons,andprovidesanenhancedB−dependantscatteringofphononsonspinons.Usingamemorymatrixapproach,weshowthattheinterplaybetweenseveralscatteringmechanisms,namely:umklapp,disorderandphonon−spinoncollisions,dominatestherelaxationofheatcurrent.Thisyieldsmagnetothermaleffectsthatarequalitativelyconsistentwiththethermalconductivitymeasurementsinthespin−1/2laddercompound{\rm Br_4(C_5H_{12}N)_2}$ (BPCB).
Cite
@article{arxiv.1205.5962,
title = {Magnetothermal Transport in Spin-Ladder Systems},
author = {Ofer Shlagman and Efrat Shimshoni},
journal= {arXiv preprint arXiv:1205.5962},
year = {2015}
}
Comments
14 pages, 4 figures