69 research outputs found
Modified spin-wave study of random antiferromagnetic-ferromagnetic spin chains
We study the thermodynamics of one-dimensional quantum spin-1/2 Heisenberg
ferromagnetic system with random antiferromagnetic impurity bonds. In the
dilute impurity limit, we generalize the modified spin-wave theory for random
spin chains, where local chemical potentials for spin-waves in ferromagnetic
spin segments are introduced to ensure zero magnetization at finite
temperature. This approach successfully describes the crossover from behavior
of pure one-dimensional ferromagnet at high temperatures to a distinct Curie
behavior due to randomness at low temperatures. We discuss the effects of
impurity bond strength and concentration on the crossover and low temperature
behavior.Comment: 14 pages, 7 eps figure
Spin-Wave Theory of the Multiple-Spin Exchange Model on a Triangular Lattice in a Magnetic Field : 3-Sublattice Structures
We study the spin wave in the S=1/2 multiple-spin exchange model on a
triangular lattice in a magnetic field within the linear spin-wave theory. We
take only two-, three- and four-spin exchange interactions into account and
restrict ourselves to the region where a coplanar three-sublattice state is the
mean-field ground state. We found that the Y-shape ground state survives
quantum fluctuations and the phase transition to a phase with a 6-sublattice
structure occurs with softening of the spin wave. We estimated the quantum
corrections to the ground state sublattice magnetizations due to zero-point
spin-wave fluctuations.Comment: 8 pages, 20 figure
Dynamic Susceptibility and Phonon Anomalies in the Bilayer - Model
We consider a bilayer version of the extended - model, with a view to
computing the form of certain experimentally observable properties. Using the
slave-boson decomposition, we show at the mean-field level that in the bilayer
system the existence of in-plane -wave singlet pairing excludes any
interplane singlet order for reasonable values of the interplane superexchange
parameter. Restricting the analysis to the regime of no interplane singlet
pairing, we deduce parameter sets reproducing the Fermi surfaces of YBCO- and
BSCCO-like bilayer systems. From these we calculate the form of the dynamic
susceptibility in both systems, and of the anomalies
in frequency and linewidth of selected phonon modes in YBCO. We compare the
results with experiment, and discuss the features which differ from the
single-layer case.Comment: 24 pages. 12 figures on 6 pages, available only by fax or s-mail;
send request by fax to -(81)-3-5800-6791 or by e-mail to
normand%[email protected]
Bond Operator Mean Field Approach to the Magnetization Plateaux in Quantum Antiferromagnets -- Application to the S=1/2 Coupled Dimerized Zigzag Heisenberg Chains
The magnetization plateaux in two dimensionally coupled S=1/2 dimerized
zigzag Heisenberg chains are investigated by means of the bond operator mean
field approximation. In the absence of the interchain coupling, this model is
known to have a plateau at half of the saturation magnetization accompanied by
the spontanuous translational symmetry breakdown. The parameter regime in which
the plateau appears is reproduced well within the present approximation. In the
presence of the interchain coupling, this plateau is shown to be suppressed.
This result is also supported by the numerical diagonalization calculation.Comment: 7 pages, 8 figure
The Heisenberg model on the 1/5-depleted square lattice and the CaV4O9 compound
We investigate the ground state structure of the Heisenberg model on the
1/5-depleted square lattice for arbitrary values of the first- and
second-neighbor exchange couplings. By using a mean-field Schwinger-boson
approach we present a unified description of the rich ground-state diagram,
which include the plaquette and dimer resonant-valence-bond phases, an
incommensurate phase and other magnetic orders with complex magnetic unit
cells. We also discuss some implications of ours results for the experimental
realization of this model in the CaV4O9 compound.Comment: 4 pages, Latex, 7 figures included as eps file
Nonlinear Bogolyubov-Valatin transformations and quaternions
In introducing second quantization for fermions, Jordan and Wigner
(1927/1928) observed that the algebra of a single pair of fermion creation and
annihilation operators in quantum mechanics is closely related to the algebra
of quaternions H. For the first time, here we exploit this fact to study
nonlinear Bogolyubov-Valatin transformations (canonical transformations for
fermions) for a single fermionic mode. By means of these transformations, a
class of fermionic Hamiltonians in an external field is related to the standard
Fermi oscillator.Comment: 6 pages REVTEX (v3: two paragraphs appended, minor stylistic changes,
eq. (39) corrected, references [10]-[14], [36], [37], [41], [67]-[69] added;
v4: few extensions, references [62], [63] added, final version to be
published in J. Phys. A: Math. Gen.
Fluorine Hyperfine Interaction in Aromatic Anion Radicals
The relation between the fluorine hyperfine splittings in about 20 fluorine substituted aromatic radicals and the π spin densities calculated according to McLachlans method is analysed with an expression of the type aF = QFFF ρπFF + QFCC ρπCC + (QFFC + QFFC) ρπFC . For the Q factors the following values are obtained: QFFF =931 gauss; QFCC =86.6 gauss and (QFFC + QFFC) =345 gauss. Two simpler expressions with one and two parameters respectively are also tested. A theoretical estimate is made for the values of the Q factors and the results are compared with the values obtained semi-empirically
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