626 research outputs found
Spin-Chirality Separation and S_3-Symmetry Breakings in the Magnetization Plateau of the Quantum Spin Tube
We study the magnetization plateau state of the three-leg spin-1/2 tube in
the strong rung coupling region, where S_3-symmetry breakings and low-energy
chirality degree of freedom play crucial roles. On the basis of the effective
chirality model and density matrix renormalization group, we clarify that, as
the leg coupling increases, the chirality liquid with gapless non-magnetic
excitations, the spin imbalance phase and the vector-spin-chirality ordered
phase emerge without closing the plateau spin gap. The relevance of these
results to experiments is also discussed.Comment: 6 pages, 6 figures, detailed results of the spin imbalance state are
adde
Gapless Excitation above a Domain Wall Ground State in a Flat Band Hubbard Model
We construct a set of exact ground states with a localized ferromagnetic
domain wall and with an extended spiral structure in a deformed flat-band
Hubbard model in arbitrary dimensions. We show the uniqueness of the ground
state for the half-filled lowest band in a fixed magnetization subspace. The
ground states with these structures are degenerate with all-spin-up or
all-spin-down states under the open boundary condition. We represent a spin
one-point function in terms of local electron number density, and find the
domain wall structure in our model. We show the existence of gapless
excitations above a domain wall ground state in dimensions higher than one. On
the other hand, under the periodic boundary condition, the ground state is the
all-spin-up or all-spin-down state. We show that the spin-wave excitation above
the all-spin-up or -down state has an energy gap because of the anisotropy.Comment: 26 pages, 1 figure. Typos are fixe
Quantum phase transitions of the asymmetric three-leg spin tube
We investigate quantum phase transitions of the S=1/2 three-leg
antiferromagnetic spin tube with asymmetric inter-chain (rung) exchange
interactions. On the basis of the electron tube system, we propose a useful
effective theory to give the global phase diagram of the asymmetric spin tube.
In addition, using other effective theories we raise the reliability of the
phase diagram. The density-matrix renormalization-group and the numerical
diagonalization analyses show that the finite spin gap appears in a narrow
region around the rung-symmetric line, in contrast to a recent paper by
Nishimoto and Arikawa [Phys. Rev. B78, 054421 (2008)]. The numerical
calculations indicate that this global phase diagram obtained by use of the
effective theories is qualitatively correct. In the gapless phase on the phase
diagram, the numerical data are fitted by a finite-size scaling in the c=1
conformal field theory. We argue that all the phase transitions between the
gapful and gapless phases belong to the Berezinskii-Kosterlitz-Thouless
universality class.Comment: 12 pages, 7 figures, 2 column, final versio
Smooth Paths on Three Dimensional Lattice
A particular class of random walks with a spin factor on a three dimensional
cubic lattice is studied. This three dimensional random walk model is a simple
generalization of random walk for the two dimensional Ising model. All critical
diffusion constants and associated critical exponents are calculated. Continuum
field theories such as Klein-Gordon, Dirac and massive Chern-Simons theories
are constructed near several critical points.Comment: 7 pages,NUP-A-94-
Quantum-fluctuation-induced collisions and subsequent excitation gap of an elastic string between walls
An elastic string embedded between rigid walls is simulated by means of the
density-matrix renormalization group. The string collides against the walls
owing to the quantum-mechanical zero-point fluctuations. Such ``quantum
entropic'' interaction has come under thorough theoretical investigation in the
context of the stripe phase observed experimentally in doped cuprates. We found
that the excitation gap opens in the form of exponential singularity DeltaE ~
exp(-Ad^sigma) (d: wall spacing) with the exponent sigma =0.6(3), which is
substantially smaller than the meanfield value sigma=2. That is, the excitation
gap is much larger than that anticipated from meanfield, suggesting that the
string is subjected to robust pinning potential due to the quantum collisions.
This feature supports Zaanen's ``order out of disorder'' mechanism which would
be responsible to the stabilization of the stripe phase
One-Dimensional S=1 Spin-Orbital Model with Uniaxial Single-Ion Anisotropy
We investigate ground-state properties of a one-dimensional S=1 spin-orbital
model with or without uniaxial single-ion anisotropy. By means of the density
matrix renormalization group method, we compute the ground-state energy, the
magnetization curves and the correlation functions. We discuss how the
ground-state properties depend on the two exchange couplings for orbital and
spin sectors. The phase diagram obtained is compared with that for the S=1/2
model. We also address the effect of uniaxial single-ion anisotropy.Comment: 7 pages, 10 figures, accepted for publication in J. Phys. Soc. Jp
Ferromagnetic Domain Wall Ground States in One-Dimensional Deformed Flat-Band Hubbard Model
We construct a set of exact ground states with a localized ferromagnetic
domain wall and an extended spiral structure in a quasi-one-dimensional
deformed flat-band Hubbard model. In the case of quarter filling, we show the
uniqueness of the ground state with a fixed magnetization. The ground states
with these structures are degenerate with the all-spin-up and all-spin-down
states. This property of the degeneracy is the same as the domain wall
solutions in the XXZ Heisenberg-Ising model. We derive a useful recursion
relation for the normalization of the domain wall ground state. Using this
recursion relation, we discuss the convergence of the ground state expectation
values of arbitrary local operators in the infinite-volume limit. In the ground
state of the infinite-volume system, the translational symmetry is
spontaneously broken by this structure. We prove that the cluster property
holds for the domain wall ground state and excited states. We also estimate
bounds of the ground state expectation values of several observables, such as
one- and two-point functions of spin and electron number density.Comment: 34 pages, 3 figures, to be published in J. Stat. Phy
Gauge Theory Description of Spin Ladders
A s=1/2 antiferromagnetic spin chain is equivalent to the two-flavor massless
Schwinger model in an uniform background charge density in the strong coupling.
The gapless mode of the spin chain is represented by a massless boson of the
Schwinger model. In a two-leg spin ladder system the massless boson aquires a
finite mass due to inter-chain interactions. The gap energy is found to be
about .25 k |J'| when the inter-chain Heisenberg coupling J' is small compared
with the intra-chain Heisenberg coupling. k is a constant of O(1). It is also
shown that a cyclically symmetric N-leg ladder system is gapless or gapful for
an odd or even N, respectively.Comment: 8 pages. CORRIGENDUM has been incorporated. (A factor 2 error has
been corrected.
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