10,982 research outputs found
On the classification of Quantum Spin Hall Models
We propose an alternative formulation of the topological index for
quantum spin Hall systems and band insulators when time reversal invariance is
not broken. The index is expressed in terms of the Chern numbers of the bands
of the model, and a connection with the number of pairs of robust edge states
is thus established. The alternative index is easy to compute in most cases of
interest. We also discuss connections with the recently proposed spin Chern
number for quantum spin Hall models.Comment: Presentation changed to improve clarity, some technical aspects of
the topological arguments including material previously cited as unpublished
notes have now been added as an appendi
Many body localization with long range interactions
Many body localization (MBL) has emerged as a powerful paradigm for
understanding non-equilibrium quantum dynamics. Folklore based on perturbative
arguments holds that MBL only arises in systems with short range interactions.
Here we advance non-perturbative arguments indicating that MBL can arise in
systems with long range (Coulomb) interactions. In particular, we show using
bosonization that MBL can arise in one dimensional systems with ~ r
interactions, a problem that exhibits charge confinement. We also argue that
(through the Anderson-Higgs mechanism) MBL can arise in two dimensional systems
with log r interactions, and speculate that our arguments may even extend to
three dimensional systems with 1/r interactions. Our arguments are `asymptotic'
(i.e. valid up to rare region corrections), yet they open the door to
investigation of MBL physics in a wide array of long range interacting systems
where such physics was previously believed not to arise.Comment: Expanded discussion of higher dimensions, updated reference
Characterizing the many-body localization transition through the entanglement spectrum
We numerically explore the many body localization (MBL) transition through
the lens of the {\it entanglement spectrum}. While a direct transition from
localization to thermalization is believed to obtain in the thermodynamic limit
(the exact details of which remain an open problem), in finite system sizes
there exists an intermediate `quantum critical' regime. Previous numerical
investigations have explored the crossover from thermalization to criticality,
and have used this to place a numerical {\it lower} bound on the critical
disorder strength for MBL. A careful analysis of the {\it high energy} part of
the entanglement spectrum (which contains universal information about the
critical point) allows us to make the first ever observation in exact numerics
of the crossover from criticality to MBL and hence to place a numerical {\it
upper bound} on the critical disorder strength for MBL.Comment: 4 pages+appendi
Two simple models of classical heat pumps
Motivated by recent studies on models of particle and heat quantum pumps, we
study similar simple classical models and examine the possibility of heat
pumping. Unlike many of the usual ratchet models of molecular engines, the
models we study do not have particle transport. We consider a two-spin system
and a coupled oscillator system which exchange heat with multiple heat
reservoirs and which are acted upon by periodic forces. The simplicity of our
models allows accurate numerical and exact solutions and unambiguous
interpretation of results. We demonstrate that while both our models seem to be
built on similar principles, one is able to function as a heat pump (or engine)
while the other is not.Comment: 4 pages, 4 figure
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