11,506 research outputs found
A New Experiment to Study Hyperon CP Violation and the Charmonium System
Fermilab operates the world's most intense antiproton source, now exclusively
dedicated to serving the needs of the Tevatron Collider. The anticipated 2009
shutdown of the Tevatron presents the opportunity for a world-leading low- and
medium-energy antiproton program. We summarize the status of the Fermilab
antiproton facility and review physics topics for which a future experiment
could make the world's best measurements.Comment: 16 pages, 3 figures, to appear in Proceedings of CTP symposium on
Supersymmetry at LHC: Theoretical and Experimental Perspectives, The British
University in Egypt, Cairo, Egypt, 11-14 March 200
Enhancement of vortex pinning in superconductor/ferromagnet bilayers via angled demagnetization
We use local and global magnetometry measurements to study the influence of
magnetic domain width w on the domain-induced vortex pinning in
superconducting/ferromagnetic bilayers, built of a Nb film and a ferromagnetic
Co/Pt multilayer with perpendicular magnetic anisotropy, with an insulating
layer to eliminate proximity effect. The quasi-periodic domain patterns with
different and systematically adjustable width w, as acquired by a special
demagnetization procedure, exert tunable vortex pinning on a superconducting
layer. The largest enhancement of vortex pinning, by a factor of more than 10,
occurs when w ~ 310 nm is close to the magnetic penetration depth.Comment: 5 pages, 3 figures, accepted to Phys. Rev. B, Rapid Communication
Electron tomography at 2.4 {\AA} resolution
Transmission electron microscopy (TEM) is a powerful imaging tool that has
found broad application in materials science, nanoscience and biology(1-3).
With the introduction of aberration-corrected electron lenses, both the spatial
resolution and image quality in TEM have been significantly improved(4,5) and
resolution below 0.5 {\AA} has been demonstrated(6). To reveal the 3D structure
of thin samples, electron tomography is the method of choice(7-11), with
resolutions of ~1 nm^3 currently achievable(10,11). Recently, discrete
tomography has been used to generate a 3D atomic reconstruction of a silver
nanoparticle 2-3 nm in diameter(12), but this statistical method assumes prior
knowledge of the particle's lattice structure and requires that the atoms fit
rigidly on that lattice. Here we report the experimental demonstration of a
general electron tomography method that achieves atomic scale resolution
without initial assumptions about the sample structure. By combining a novel
projection alignment and tomographic reconstruction method with scanning
transmission electron microscopy, we have determined the 3D structure of a ~10
nm gold nanoparticle at 2.4 {\AA} resolution. While we cannot definitively
locate all of the atoms inside the nanoparticle, individual atoms are observed
in some regions of the particle and several grains are identified at three
dimensions. The 3D surface morphology and internal lattice structure revealed
are consistent with a distorted icosahedral multiply-twinned particle. We
anticipate that this general method can be applied not only to determine the 3D
structure of nanomaterials at atomic scale resolution(13-15), but also to
improve the spatial resolution and image quality in other tomography
fields(7,9,16-20).Comment: 27 pages, 17 figure
Translational Invariance and the Anisotropy of the Cosmic Microwave Background
Primordial quantum fluctuations produced by inflation are conventionally
assumed to be statistically homogeneous, a consequence of translational
invariance. In this paper we quantify the potentially observable effects of a
small violation of translational invariance during inflation, as characterized
by the presence of a preferred point, line, or plane. We explore the imprint
such a violation would leave on the cosmic microwave background anisotropy, and
provide explicit formulas for the expected amplitudes of
the spherical-harmonic coefficients.Comment: Notation improve
Dynamics of a quantum quench in an ultra-cold atomic BCS superfluid
We study dynamics of an ultra-cold atomic BCS superfluid driven towards the
BCS superfluid-Fermi liquid quantum critical point by a gradual decrease of the
pairing interaction. We analyze how the BCS superfluid falls out of equilibrium
and show that the non-equilibrium gap and Cooper pair size reflect critical
properties of the transition. We observe three stages of evolution: adiabatic
where the Cooper pair size is inversely proportional to the equilibrium gap,
weakly non-equilibrium where it is inversely proportional to the
non-equilibrium gap, and strongly non-equilibrium where it decouples from both
equilibrium and non-equilibrium gap. These phenomena should stimulate future
experimental characterization of non-equilibrium ultra-cold atomic BCS
superfluids.Comment: 5 pages, 3 figures, to appear in PR
Free-carrier relaxation and lattice heating in photoexcited bismuth thin films
We report ultrafast surface pump and interface probe experiments on
photoexcited carrier transport across single crystal bismuth films on sapphire.
The film thickness is sufficient to separate carrier dynamics from lattice
heating and strain, allowing us to investigate the time-scales of momentum
relaxation, heat transfer to the lattice and electron-hole recombination. The
measured electron-hole () recombination time is 12--26 ps and ambipolar
diffusivity is 18--40 cm/s for carrier excitation up to . By comparing the heating of the front and back sides of the
film, we put lower limits on the rate of heat transfer to the lattice, and by
observing the decay of the plasma at the back of the film, we estimate the
timescale of electron-hole recombination. We interpret each of these timescales
within a common framework of electron-phonon scattering and find qualitative
agreement between the various relaxation times observed. We find that the
carrier density is not determined by the plasma temperature after a few
picoseconds. The diffusion and recombination become nonlinear with initial
excitation
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