301 research outputs found
Dynamics of the (spin-) Hall effect in topological insulators and graphene
A single two-dimensional Dirac cone with a mass gap produces a quantized
(spin-) Hall step in the absence of magnetic field. What happens in strong
electric fields? This question is investigated by analyzing time evolution and
dynamics of the (spin-) Hall effect. After switching on a longitudinal electric
field, a stationary Hall current is reached through damped oscillations. The
Hall conductivity remains quantized as long as the electric field (E) is too
weak to induce Landau-Zener transitions, but quantization breaks down for
strong fields and the conductivity decreases as 1/sqrt{E}. These apply to the
(spin-) Hall conductivity of graphene and the Hall and magnetoelectric response
of topological insulators.Comment: 4 pages, 3 figure
Out-of-time-ordered density correlators in Luttinger liquids
Information scrambling and the butterfly effect in chaotic quantum systems
can be diagnosed by out-of-time-ordered (OTO) commutators through an
exponential growth and large late time value. We show that the latter feature
shows up in a strongly correlated many-body system, a Luttinger liquid, whose
density fluctuations we study at long and short wavelengths, both in
equilibrium and after a quantum quench. We find rich behaviour combining
robustly universal and non-universal features. The OTO commutators display
temperature and initial state independent behaviour, and grow as for
short times. For the short wavelength density operator, they reach a sizeable
value after the light cone only in an interacting Luttinger liquid, where the
bare excitations break up into collective modes. We benchmark our findings
numerically on an interacting spinless fermion model in 1D, and find
persistence of central features even in the non-integrable case. As a
non-universal feature, the short time growth exhibits a distance dependent
power.Comment: 6 pages, 2 figure
Disordered flat bands on the kagome lattice
We study two models of correlated bond- and site-disorder on the kagome
lattice considering both translationally invariant and completely disordered
systems. The models are shown to exhibit a perfectly flat ground state band in
the presence of disorder for which we provide exact analytic solutions. Whereas
in one model the flat band remains gapped and touches the dispersive band, the
other model has a finite gap, demonstrating that the band touching is not
protected by topology alone. Our model also displays fully saturated
ferromagnetic groundstates in the presence of repulsive interactions, an
example of disordered flat band ferromagnetism.Comment: 7+3 pages, 4+2 figures, accepted versio
The fate of a discrete time crystal in an open system
Following the recent realisation that periodically driven quantum matter can
support new types of spatiotemporal order, now known as discrete time crystals
(DTCs), we consider the stability of this phenomenon. Motivated by its
conceptual importance as well as its experimental relevance we consider the
effect of coupling to an external environment. We use this to argue, both
analytically and numerically, that the DTC in disordered one-dimensional
systems is destroyed at long times by any such natural coupling. This holds
true even in the case where the coupling is such that the system is prevented
from heating up by an external thermal bath
The Coulomb potential V(r)=1/r and other radial problems on the Bethe lattice
We study the problem of a particle hopping on the Bethe lattice in the
presence of a Coulomb potential. We obtain an exact solution to the particle's
Green's function along with the full energy spectrum. In addition, we present a
mapping of a generalized radial potential problem defined on the Bethe lattice
to an infinite number of one dimensional problems that are easily accessible
numerically. The latter method is particularly useful when the problem admits
no analytical solution.Comment: 5 pages + reference
Control of effective free energy landscape in a frustrated magnet by a field pulse
Thermal fluctuations can lift the degeneracy of a ground state manifold,
producing a free energy landscape without accidentally degenerate minima. In a
process known as order by disorder, a subset of states incorporating
symmetry-breaking may be selected. Here, we show that such a free energy
landscape can be controlled in a non-equilibrium setting as the slow motion
within the ground state manifold is governed by the fast modes out of it. For
the paradigmatic case of the classical pyrochlore XY antiferromagnet, we show
that a uniform magnetic field pulse can excite these fast modes to generate a
tunable effective free energy landscape with minima at thermodynamically
unstable portions of the ground state manifold.Comment: 10 pages, 6 figures; minor revision
One-Dimensional Symmetry Protected Topological Phases and their Transitions
We present a unified perspective on symmetry protected topological (SPT)
phases in one dimension and address the open question of what characterizes
their phase transitions. In the first part of this work we use symmetry as a
guide to map various well-known fermionic and spin SPTs to a Kitaev chain with
coupling of range . This unified picture uncovers new
properties of old models --such as how the cluster state is the fixed point
limit of the Affleck-Kennedy-Lieb-Tasaki state in disguise-- and elucidates the
connection between fermionic and bosonic phases --with the Hubbard chain
interpolating between four Kitaev chains and a spin chain in the Haldane phase.
In the second part, we study the topological phase transitions between these
models in the presence of interactions. This leads us to conjecture that the
critical point between any SPT with -dimensional edge modes and the trivial
phase has a central charge . We analytically verify this for
many known transitions. This agrees with the intuitive notion that the phase
transition is described by a delocalized edge mode, and that the central charge
of a conformal field theory is a measure of the gapless degrees of freedom.Comment: 18 pages, 9 figures, 3 page appendi
Non-equilibrium dynamics in Bose-Hubbard ladders
Motivated by a recent experiment on the non-equilibrium dynamics of
interacting bosons in ladder-shaped optical lattices, we report exact
calculations on the sweep dynamics of Bose-Hubbard systems in finite two-leg
ladders. The sweep changes the energy bias between the legs linearly over a
finite time. As in the experiment, we study the cases of [a] the bosons
initially all in the lower-energy leg (ground state sweep) and [b] the bosons
initially all in the higher-energy leg (inverse sweep). The approach to
adiabaticity in the inverse sweep is intricate, as the transfer of bosons is
non-monotonic as a function of both sweep time and intra-leg tunnel coupling.
Our exact study provides explanations for these non-monotonicities based on
features of the full spectrum, without appealing to concepts (e.g., gapless
excitation spectrum) that are more appropriate for the thermodynamic limit. We
also demonstrate and study Stueckelberg oscillations in the finite-size
ladders.Comment: 8 pages, 10 figure
Dynamical and Topological Properties of the Kitaev Model in a [111] Magnetic Field
The Kitaev model exhibits a Quantum Spin Liquid hosting emergent
fractionalized excitations. We study the Kitaev model on the honeycomb lattice
coupled to a magnetic field along the [111] axis. Utilizing large scale matrix
product based numerical models, we confirm three phases with transitions at
different field strengths depending on the sign of the Kitaev exchange: a
non-abelian topological phase at low fields, an enigmatic intermediate regime
only present for antiferromagnetic Kitaev exchange, and a field-polarized
phase. For the topological phase, we numerically observe the expected cubic
scaling of the gap and extract the quantum dimension of the non-Abelian anyons.
Furthermore, we investigate dynamical signatures of the topological and the
field-polarized phase using a matrix product operator based time evolution
method.Comment: Changed convention to be in accordance with published articl
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