105 research outputs found
Three-body correlations and finite-size effects in the Moore--Read states on a sphere
Two- and three-body correlations in partially filled degenerate fermion
shells are studied numerically for various interactions between the particles.
Three distinct correlation regimes are defined, depending on the short-range
behavior of the pair pseudopotential. For pseudopotentials similar to those of
electrons in the first excited Landau level, correlations at half-filling have
a simple three-body form consisting of the maximum avoidance of the triplet
state with the smallest relative angular momentum R_3=3. In analogy to the
superharmonic criterion for Laughlin two-body correlations, their occurrence is
related to the form of the three-body pseudopotential at short range. The
spectra of a model three-body repulsion are calculated, and the zero-energy
Moore--Read ground state, its +-e/4-charged quasiparticles, and the
magnetoroton and pair-breaking bands are all identified. The quasiparticles are
correctly described by a composite fermion model appropriate for Halperin's
p-type pairing with Laughlin correlations between the pairs. However, the
Moore--Read ground state, and specially its excitations, have small overlaps
with the corresponding Coulomb eigenstates when calculated on a sphere. The
reason lies in surface curvature which affects the form of pair pseudopotential
for which the "R_3>3" three-body correlations occur. In finite systems, such
pseudopotential must be slightly superharmonic at short range (different from
Coulomb pseudopotential). However, the connection with the three-body
pseudopotential is less size-dependent, suggesting that the Moore--Read state
and its excitations are a more accurate description for experimental nu=5/2
states than could be expected from previous calculations.Comment: 12 pages, 12 figures, submitted to PR
Search for electron liquids with non-Abelian quasiparticles
We use exact numerical diagonalization in the search of fractional quantum
Hall states with non-Abelian quasiparticle statistics. For the (most promising)
states in a partially filled second Landau level, the search is narrowed to the
range of filling factors . In this range, the analysis of
energy spectra and correlation functions, calculated including finite width and
Landau level mixing, supports the prominent non-Abelian candidates at
(paired Moore--Read "pfafian" state) and 12/5 (clustered
Read--Rezayi "parafermion" state). Outside of this range, the noninteracting
composite fermion model with four attached flux quanta is validated, yielding
the family of quantum liquids with fractional, but Abelian statistics. The
borderline state is shown to be adiabatically connected to the
Laughlin liquid, but its short-range correlations are significantly different.Comment: 9 pages, 8 figure
Interaction and dynamical binding of spin waves or excitons in quantum Hall systems
Interaction between spin waves (or excitons) moving in the lowest Landau
level is studied using numerical diagonalization. Becuse of complicated
statistics obeyed by these composite particles, their effective interaction is
completely different from the dipole-dipole interaction predicted in the model
of independent (bosonic) waves. In particular, spin waves moving in the same
direction attract one another which leads to their dynamical binding. The
interaction pseudopotentials V_[up,up](k) and V_[up,down](k) for two spin waves
with equal wavevectors k and moving in the same or opposite directions have
been calculated and shown to obey power laws V(k) ~ k^alpha at small k. A high
value of alpha_[up,up]~4 explains the occurrence of linear bands in the spin
excitation spectra of quantum Hall droplets.Comment: 6 pages, 4 figures, submitted to PR
Fractional Quantum Hall States of Clustered Composite Fermions
The energy spectra and wavefunctions of up to 14 interacting quasielectrons
(QE's) in the Laughlin nu=1/3 fractional quantum Hall (FQH) state are
investigated using exact numerical diagonalization. It is shown that at
sufficiently high density the QE's form pairs or larger clusters. This
behavior, opposite to Laughlin correlations, invalidates the (sometimes
invoked) reapplication of the composite fermion picture to the individual QE's.
The series of finite-size incompressible ground states are identified at the QE
filling factors nu_QE=1/2, 1/3, 2/3, corresponding to the electron fillings
nu=3/8, 4/11, 5/13. The equivalent quasihole (QH) states occur at nu_QH=1/4,
1/5, 2/7, corresponding to nu=3/10, 4/13, 5/17. All these six novel FQH states
were recently discovered experimentally. Detailed analysis indicates that QE or
QH correlations in these states are different from those of well-known FQH
electron states (e.g., Laughlin or Moore-Read states), leaving the origin of
their incompressibility uncertain. Halperin's idea of Laughlin states of QP
pairs is also explored, but is does not seem adequate.Comment: 14 pages, 9 figures; revision: 1 new figure, some new references,
some new data, title chang
Quasiexcitons in Incompressible Quantum Liquids
Photoluminescence (PL) has been used to study two-dimensional incompressible
electron liquids in high magnetic fields for nearly two decades. However, some
of the observed anomalies coincident with the fractional quantum Hall effect
are still unexplained. We show that emission in these systems occurs from
fractionally charged "quasiexciton" states formed from trions correlated with
the surrounding electrons. Their binding and recombination depend on the state
of both the electron liquid and the involved trion, predicting discontinuities
in PL and sensitivity to sample parameters.Comment: 4 pages, 4 figure
Composite Fermions and the Fractional Quantum Hall Effect: Essential Role of the Pseudopotential
The mean field (MF) composite Fermion (CF) picture successfully predicts the
band of low lying angular momentum multiplets of fractional quantum Hall
systems for any value of the magnetic field. This success cannot be attributed
to a cancellation between Coulomb and Chern--Simons interactions between
fluctuations beyond the mean field. It results instead from the short range
behavior of the Coulomb pseudopotential in the lowest Landau level (LL). The
class of pseudopotentials for which the MFCF picture is successful can be
defined, and used to explain the success or failure of the picture in different
cases (e.g. excited LL's, charged magneto-excitons, and Laughlin quasiparticles
in a CF hierarchy picture).Comment: 4 pages, 4 figures (RevTeX+epsf); talk at EP2DS-XII
Energy, interaction, and photoluminescence of spin-reversed quasielectrons in fractional quantum Hall systems
The energy and photoluminescence spectra of a two-dimensional electron gas in
the fractional quantum Hall regime are studied. The single-particle properties
of reversed-spin quasielectrons (QE's) as well as the
pseudopotentials of their interaction with one another and with Laughlin
quasielectrons (QE's) and quasiholes (QH's) are calculated. Based on the
short-range character of the QE--QE and QE--QE
repulsion, the partially unpolarized incompressible states at the filling
factors and are postulated within Haldane's
hierarchy scheme. To describe photoluminescence, the family of bound
QE states of a valence hole and QE's are
predicted in analogy to the found earlier fractionally charged excitons
QE. The binding energy and optical selection rules for both families are
compared. The QE is found radiative in contrast to the dark QE,
and the QE is found non-radiative in contrast to the bright
QE.Comment: 9 pages, 6 figure
Spin instabilities and quantum phase transitions in integral and fractional quantum Hall states
The inter-Landau-level spin excitations of quantum Hall states at filling
factors nu=2 and 4/3 are investigated by exact numerical diagonalization for
the situation in which the cyclotron (hbar*omega_c) and Zeeman (E_Z) splittings
are comparable. The relevant quasiparticles and their interactions are studied,
including stable spin wave and skyrmion bound states. For nu=2, a spin
instability at a finite value of epsilon=hbar*omega_c-E_Z leads to an abrupt
paramagnetic to ferromagnetic transition, in agreement with the mean-field
approximation. However, for nu=4/3 a new and unexpected quantum phase
transition is found which involves a gradual change from paramagnetic to
ferromagnetic occupancy of the partially filled Landau level as epsilon is
decreased.Comment: 4 pages, 5 figures, submitted to Phys.Rev.Let
Polaron contributions to the biexciton binding energies in self-assembled quantum dots
The contribution to the biexciton binding energy in quantum dots resulting
from the interaction with longitudinal optical phonons is estimated by
performing the configuration--interaction calculation of the few-particle
states in a simple model of the confining potential and including the phonon
corrections by means of a perturbation theory. It is found that the polaron
contribution tends to compensate the Coulomb-related biexciton shift (binding
energy) and reduces its value by several to even 30%, depending on the material
parameters of the system.Comment: 4 pqges, 2 color figures; moderately modified versio
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