Affiliation:
1. Braunschweig University of Technology
2. University of Hamburg
3. Delta Institute for Theoretical Physics
4. University of Amsterdam
5. Bielefeld University
Abstract
The ferrimagnetic phase of the sawtooth chain with mixed
ferromagnetic nearest-neighbour interactions
JJ
and antiferromagnetic next-nearest-neighbour interactions
J'J′
(within the isotropic Heisenberg model) was previously characterized as
a phase with commensurate order. In this paper, we demonstrate that the
system in fact exhibits an incommensurate quantum spin spiral. Even
though the ground state is translationally invariant in terms of the
local spin expectations ‹S_i›‹Si#8250;,
the spiral can be detected via the connected spin-spin correlations
‹{S_i\cdot S_j}#8250;‹Si⋅Sj#8250;-‹{S_i}#8250;\cdot‹{S_j}#8250;‹Si#8250;⋅‹Sj#8250;
between the apical spins. It has a long wavelength that grows with
J'J′
and that soon exceeds finite-system sizes typically employed in
numerical simulations. A faithful treatment thus requires the use of
state-of-the-art simulations for large, periodic systems. In this work,
we are able to accurately treat up to L=400L=400
sites (200 unit cells) with periodic boundary conditions using the
density-matrix renormaliztion group (DMRG). Exploiting the SU(2)
symmetry allows us to directly compute the lowest-energy state for a
given total spin. Our results are corroborated by variational uniform
matrix product state (VUMPS) calculations, which work directly in the
thermodynamic limit at the cost of a lower accuracy.
Funder
Deutsche Forschungsgemeinschaft
Niedersächsisches Ministerium für Wissenschaft und Kultur
Subject
General Physics and Astronomy
Cited by
4 articles.
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