30,106 research outputs found
Transport in three-dimensional topological insulators: theory and experiment
This article reviews recent theoretical and experimental work on transport
due to the surface states of three-dimensional topological insulators. The
theoretical focus is on longitudinal transport in the presence of an electric
field, including Boltzmann transport, quantum corrections and weak
localization, as well as longitudinal and Hall transport in the presence of
both electric and magnetic fields and/or magnetizations. Special attention is
paid to transport at finite doping, to the -Berry phase, which leads to
the absence of backscattering, Klein tunneling and half-quantized Hall
response. Signatures of surface states in ordinary transport and
magnetotransport are clearly identified. The review also covers transport
experiments of the past years, reviewing the initial obscuring of surface
transport by bulk transport, and the way transport due to the surface states
has increasingly been identified experimentally. Current and likely future
experimental challenges are given prominence and the current status of the
field is assessed.Comment: Review article to appear in Physica
Special Libraries, May 1919
Volume 10, Issue 4https://scholarworks.sjsu.edu/sla_sl_1919/1003/thumbnail.jp
Hole-Doped Cuprate High Temperature Superconductors
Hole-doped cuprate high temperature superconductors have ushered in the
modern era of high temperature superconductivity (HTS) and have continued to be
at center stage in the field. Extensive studies have been made, many compounds
discovered, voluminous data compiled, numerous models proposed, many review
articles written, and various prototype devices made and tested with better
performance than their nonsuperconducting counterparts. The field is indeed
vast. We have therefore decided to focus on the major cuprate materials systems
that have laid the foundation of HTS science and technology and present several
simple scaling laws that show the systematic and universal simplicity amid the
complexity of these material systems, while referring readers interested in the
HTS physics and devices to the review articles. Developments in the field are
mostly presented in chronological order, sometimes with anecdotes, in an
attempt to share some of the moments of excitement and despair in the history
of HTS with readers, especially the younger ones.Comment: Accepted for publication in Physica C, Special Issue on
Superconducting Materials; 27 pages, 2 tables, 30 figure
Entanglement Dynamics in Two-Qubit Open System Interacting with a Squeezed Thermal Bath via Quantum Nondemolition interaction
We analyze the dynamics of entanglement in a two-qubit system interacting
with an initially squeezed thermal environment via a quantum nondemolition
system-reservoir interaction, with the system and reservoir assumed to be
initially separable. We compare and contrast the decoherence of the two-qubit
system in the case where the qubits are mutually close-by (`collective regime')
or distant (`localized regime') with respect to the spatial variation of the
environment. Sudden death of entanglement (as quantified by concurrence) is
shown to occur in the localized case rather than in the collective case, where
entanglement tends to `ring down'. A consequence of the QND character of the
interaction is that the time-evolved fidelity of a Bell state never falls below
, a fact that is useful for quantum communication applications like
a quantum repeater. Using a novel quantification of mixed state entanglement,
we show that there are noise regimes where even though entanglement vanishes,
the state is still available for applications like NMR quantum computation,
because of the presence of a pseudo-pure component.Comment: 17 pages, 9 figures, REVTeX
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