2,381 research outputs found
Can Society Promise Health?
From his standpoint as educator, Dr. Millis draws on an analogy between universal education and universally available medical care as an indicator of the discrepancy between national expectation and national accomplishment. He relates these insights to the principle of individual responsibility
Interface ordering and phase competition in a model Mott-insulator--band-insulator heterostructure
The phase diagram of model Mott-insulator--band-insulator heterostructures is
studied using the semiclassical approximation to the dynamical-mean-field
method as a function of thickness, coupling constant, and charge confinement.
An interface-stabilized ferromagnetic phase is found, allow the study of its
competition and possible coexistence with the antiferromagnetic order
characteristic of the bulk Mott insulator.Comment: 5 pages, 3 figures, manuscript revised, results unchange
Decoherence of one-dimensional flying qubits due to their cross-talk and imperfections
We study decoherence of propagating spin-1/2 excitations in generic
(non-integrable and/or disordered) spin chains. We find the relevant
decoherence times to be shorter in both the near-critical and diffusive regimes
(if any), which fact might have important implications for the recently
proposed spin chain-based implementations of quantum information processing.Comment: Latex, 5 pages, no figure
Polaron Crossover and Bipolaronic Metal-Insulator Transition in the Holstein model at half-filling
The evolution of the properties of a finite density electronic system as the
electron-phonon coupling is increased are investigated in the
Holstein model using the Dynamical Mean-Field Theory (DMFT).
We compare the spinless fermion case, in which only isolated polarons can be
formed, with the spinful model in which the polarons can bind and form
bipolarons. In the latter case, the bipolaronic binding occurs through a
metal-insulator transition. In the adiabatic regime in which the phonon energy
is small with respect to the electron hopping we compare numerically exact DMFT
results with an analytical scheme inspired by the Born-Oppenheimer procedure.
Within the latter approach,a truncation of the phononic Hilbert space leads to
a mapping of the original model onto an Anderson spin-fermion model. In the
anti-adiabatic regime (where the phonon energy exceeds the electronic scales)
the standard treatment based on Lang-Firsov canonical transformation allows to
map the original model on to an attractive Hubbard model in the spinful case.
The separate analysis of the two regimes supports the numerical evidence that
polaron formation is not necessarily associated to a metal-insulator
transition, which is instead due to pairing between the carriers. At the
polaron crossover the Born-Oppenheimer approximation is shown to break down due
to the entanglement of the electron-phonon state.Comment: 19 pages, 15 figure
Monte Carlo Simulations for the Magnetic Phase Diagram of the Double Exchange Hamiltonian
We have used Monte Carlo simulation techniques to obtain the magnetic phase
diagram of the double exchange Hamiltonian. We have found that the Berry's
phase of the hopping amplitude has a negligible effect in the value of the
magnetic critical temperature. To avoid finite size problems in our simulations
we have also developed an approximated expression for the double exchange
energy. This allows us to obtain the critical temperature for the ferromagnetic
to paramagnetic transition more accurately. In our calculations we do not
observe any strange behavior in the kinetic energy, chemical potential or
electron density of states near the magnetic critical temperature. Therefore,
we conclude that other effects, not included in the double exchange
Hamiltonian, are needed to understand the metal-insulator transition which
occurs in the manganites.Comment: 6 pages Revtex, 8 PS figure
On the Critical Behavior of the Uniform Susceptibility of a Fermi Liquid Near an Antiferromagnetic Transition with Dynamic Exponent
We compute the leading behavior of the uniform magnetic susceptibility,
, of a Fermi liquid near an antiferromagnetic transition with dynamic
exponent . Our calculation clarifies the role of triangular ``anomaly''
graphs in the theory and justifies the effective action used in previous work
\cite{Hertz}. We find that at the critical point of a two dimensional
material, with and
nonuniversal constants. For reasonable band structures we find that in a
weak coupling approximation is small and positive. Our result suggests that
the behavior observed in the quantum critical regime of underdoped high-
superconductors are difficult to explain in a theory.Comment: 12 pages, uuencoded Postscript fil
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