Magnetic insulators have proven to be usable as quantum simulators for itinerant interacting quantum systems. In particular the compound (C5H12N)2CuBr4 (short (Hpip)2CuBr4) was shown to be a remarkable realization of a Tomonaga-Luttinger liquid (TLL) and allowed to quantitatively test the TLL theory. Substitution weakly disorders this class of compounds and allows thus to use them to tackle questions pertaining to the effect of disorder in TLL as well, such as the formation of the Bose glass. As a first step in this direction we present in this paper a study of the properties of the related (Hpip)2CuCl4 compound. We determine the exchange couplings and compute the temperature and magnetic field dependence of the specific heat, using a finite temperature Density Matrix Renormalization group (DMRG) procedure. Comparison with the measured specific heat at zero magnetic field confirms the exchange parameters and Hamiltonian for the (Hpip)2CuCl4 compound, giving the basis needed to start studying the disorder effects.
Cite
@article{arxiv.1308.2712,
title = {Spin ladders and quantum simulators for Luttinger liquids},
author = {S. Ward and P. Bouillot and H. Ryll and K. Kiefer and K. W. Krämer and Ch. Rüegg and C. Kollath and T. Giamarchi},
journal= {arXiv preprint arXiv:1308.2712},
year = {2013}
}
Comments
Part of the special issue "Physics in one dimension", A van Houselt, J Sch\"afer, H J W Zandvliet and R Claessen ed