paper

Bond-bond correlations, gap relations and thermodynamics of spin- chains with spin-Peierls transitions and bond-order-wave phases

arXiv:2010.02999 · doi:10.1016/j.jmmm.2020.167472

Abstract

The spin- chain with antiferromagnetic exchange and between first and second neighbors, respectively, has both gapless and gapped () quantum phases at frustration . The ground state instability of regular () chains to dimerization () drives a spin-Peierls transition at that varies with in these strongly correlated systems. The thermodynamic limit of correlated states is obtained by exact treatment of short chains followed by density matrix renormalization calculations of progressively longer chains. The doubly degenerate ground states of the gapped regular phase are bond order waves (BOWs) with long-range bond-bond correlations and electronic dimerization . The dependence of is found using four-spin correlation functions and contrasted to structural dimerization at . The relation between and the gap varies with frustration in both gapless and gapped phases. The magnetic susceptibility at can be used to identify physical realizations of spin-Peierls systems. The chain illustrates the characteristic BOW features of a regular chain with a large singlet-triplet gap and electronic dimerization.

9 pages, 8 figures