852 research outputs found
Magnetization plateaus of an easy-axis Kagom\'e antiferromagnet with extended interactions
We investigate the properties in finite magnetic field of an extended
anisotropic XXZ spin-1/2 model on the Kagome lattice, originally introduced by
Balents, Fisher, and Girvin [Phys. Rev. B, 65, 224412 (2002)]. The
magnetization curve displays plateaus at magnetization m=1/6 and 1/3 when the
anisotropy is large. Using low-energy effective constrained models (quantum
loop and quantum dimer models), we discuss the nature of the plateau phases,
found to be crystals that break discrete rotation and/or translation
symmetries. Large-scale quantum Monte-Carlo simulations were carried out in
particular for the m=1/6 plateau. We first map out the phase diagram of the
effective quantum loop model with an additional loop-loop interaction to find
stripe order around the point relevant for the original model as well as a
topological Z2 spin liquid. The existence of a stripe crystalline phase is
further evidenced by measuring both standard structure factor and entanglement
entropy of the original microscopic model.Comment: 14 pages, 14 figure
Phases of the generalized two-leg spin ladder: A view from the SU(4) symmetry
The zero-temperature phases of a generalized two-leg spin ladder with
four-spin exchanges are discussed by means of a low-energy field theory
approach starting from an SU(4) quantum critical point. The latter fixed point
is shown to be a rich multicritical point which unifies different competing
dimerized orders and a scalar chirality phase which breaks spontaneously the
time-reversal symmetry. The quantum phase transition between these phases is
governed by spin-singlet fluctuations and belongs to the Luttinger universality
class due to the existence of an exact U(1) self-duality symmetry.Comment: 5 pages, 1 figur
Symmetry-protected topological phases of alkaline-earth cold fermionic atoms in one dimension
We investigate the existence of symmetry-protected topological phases in
one-dimensional alkaline-earth cold fermionic atoms with general half-integer
nuclear spin I at half filling. In this respect, some orbital degrees of
freedom are required. They can be introduced by considering either the
metastable excited state of alkaline-earth atoms or the p-band of the optical
lattice. Using complementary techniques, we show that SU(2) Haldane topological
phases are stabilised from these orbital degrees of freedom. On top of these
phases, we find the emergence of topological phases with enlarged SU(2I+1)
symmetry which depend only on the nuclear spin degrees of freedom. The main
physical properties of the latter phases are further studied using a
matrix-product state approach. On the one hand, we find that these phases are
symmetry-protected topological phases, with respect to inversion symmetry, when
I=1/2,5/2,9/2,..., which is directly relevant to ytterbium and strontium cold
fermions. On the other hand, for the other values of I(=half-odd integer),
these topological phases are stabilised only in the presence of exact
SU(2I+1)-symmetry
Magnetization plateaus in weakly coupled dimer spin system
I study a spin system consisting of strongly coupled dimers which are in turn
weakly coupled in a plane by zigzag interactions. The model can be viewed as
the strong-coupling limit of a two-dimensional zigzag chain structure typical,
e.g., for the -planes of KCuCl_3. It is shown that the magnetization
curve in this model has plateaus at 1/3 and 2/3 of the saturation
magnetization, and an additional plateau at 1/2 can appear in a certain range
of the model parameters; the critical fields are calculated perturbatively. It
is argued that for the three-dimensional lattice structure of the KCuCl_3
family the plateaus at 1/4 and 3/4 of the saturation can be favored in a
similar way, which might be relevant to the recent experiments on NH_4CuCl_3 by
Shiramura et al., J. Phys. Soc. Jpn. {\bf 67}, 1548 (1998).Comment: serious changes in Sect. II,III, final version to appear in PR
Magnetization plateaus in antiferromagnetic-(ferromagnetic)_{n} polymerized S=1/2 XXZ chains
The plateau-non-plateau transition in the
antiferromagnetic-(ferromagnetic) polymerized XXZ chains under
the magnetic field is investigated. The universality class of this transition
belongs to the Brezinskii-Kosterlitz-Thouless (BKT) type. The critical points
are determined by level spectroscopy analysis of the numerical diagonalization
data for where is the size of a unit cell.
It is found that the critical strength of ferromagnetic coupling decreases with
for small but increases for larger enough . It is also found that
the plateau for large is wide enough for moderate values of exchange
coupling so that it should be easily observed experimentally. This is in
contrast to the plateaus for chains which are narrow for a wide range
of exchange coupling even away from the critical point
Low-lying excitations and magnetization process of coupled tetrahedral systems
We investigate low-lying singlet and triplet excitations and the
magnetization process of quasi-1D spin systems composed of tetrahedral spin
clusters. For a class of such models, we found various exact low-lying
excitations; some of them are responsible for the first-order transition
between two different ground states formed by local singlets. Moreover, we find
that there are two different kinds of magnetization plateaus which are
separated by a first-order transition.Comment: To appear in Phys.Rev.B (Issue 01 August 2002). A short comment is
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