226 research outputs found
Multiple Charge State Beam Acceleration at Atlas
A test of the acceleration of multiple charge-state uranium beams was
performed at the ATLAS accelerator. A 238U+26 beam was accelerated in the ATLAS
PII linac to 286 MeV (~1.2 MeV/u) and stripped in a carbon foil located 0.5 m
from the entrance of the ATLAS Booster section. A 58Ni9+ 'guide' beam from the
tandem injector was used to tune the Booster for 238U+38. All charge states
from the stripping were injected into the booster and accelerated. Up to 94% of
the beam was accelerated through the Booster linac, with losses mostly in the
lower charge states. The measured beam properties of each charge state and a
comparison to numerical simulations are reported in this paper.Comment: LINAC2000, MOD0
Long-Wave Instability of Advective Flows in Inclined Layer with Solid Heat Conductive Boundaries
We investigate the stability of the steady convective flow in a plane tilted
layer with ideal thermal conductivity of solid boundaries in the presence of
uniform longitudinal temperature gradient. Analytically found the stability
boundary with respect to the long-wave perturbations, find the critical Grashof
number for the most dangerous among them of even spiral perturbation.Comment: in Russian, 18 pages, 5 figures, submited to Appl. mechanics and
physics, RAS Siberian brunch, Novosibirsk, Russia; Key words: advective flow,
oblique layer, a longitudinal temperature gradient, long-wave instabilit
Advanced surface treatments for medium-velocity superconducting RF cavities for high accelerating gradient continuous-wave operation
Nitrogen-doping and furnace-baking are advanced high-Q0 recipes developed for
1.3 GHz TESLA-type cavities. These treatments will significantly benefit the
high-Q0 linear accelerator community if they can be successfully adapted to
different cavity styles and frequencies. Strong frequency- and geometry-
dependence of these recipes makes the technology transfer amongst different
cavity styles and frequencies far from straightforward, and requires rigorous
study. Upcoming high-Q0 continuous-wave linear accelerator projects, such as
the proposed Michigan State University Facility for Rare Isotope Beam Energy
Upgrade, and the underway Fermilab's Proton Improvement Plan-II, could benefit
enormously from adapting these techniques to their beta_opt = 0.6 ~650 MHz
5-cell elliptical superconducting rf cavities, operating at an accelerating
gradient of around ~17 MV/m. This is the first investigation of the adaptation
of nitrogen doping and medium temperature furnace baking to prototype 644 MHz
beta_opt = 0.65 cavities, with the aim of demonstrating the high-Q0 potential
of these recipes in these novel cavities for future optimization as part of the
FRIB400 project R&D. We find that nitrogen-doping delivers superior Q0, despite
the sub-GHz operating frequency of these cavities, but is sensitive to the
post-doping electropolishing removal step and experiences elevated residual
resistance. Medium temperature furnace baking delivers reasonable performance
with decreased residual resistance compared to the nitrogen doped cavity, but
may require further recipe refinement. The gradient requirement for the FRIB400
upgrade project is comfortably achieved by both recipes.Comment: 16 pages, 5 figure
Science Requirements and Conceptual Design for a Polarized Medium Energy Electron-Ion Collider at Jefferson Lab
This report presents a brief summary of the science opportunities and program
of a polarized medium energy electron-ion collider at Jefferson Lab and a
comprehensive description of the conceptual design of such a collider based on
the CEBAF electron accelerator facility.Comment: 160 pages, ~93 figures This work was supported by the U.S. Department
of Energy, Office of Nuclear Physics, under Contract No. DE-AC05-06OR23177,
DE-AC02-06CH11357, DE-AC05-060R23177, and DESC0005823. The U.S. Government
retains a non-exclusive, paid-up, irrevocable, world-wide license to publish
or reproduce this manuscript for U.S. Government purpose
CERN PS laser ion source development
CERN, together with ITEP and TRINITI (Russia), is developing a CO2 laser ion source. The key design parameters are: 1.4 1010 ions of Pb25+ in a pulse of 5.5 ms, with a 4-rms emittance of 0.2 10-6 rad m, working at a repetition rate of 1 Hz. This device is considered as one candidate source for LHC heavy ion operation. The status of the laser development, the experimental set-up of the source consisting of the target area and its illumination, the plasma expansion area and extraction, beam transport and ion pre-acceleration by an RFQ, will be given
Optical properties of Y2O3 thin films doped with spatially controlled Er3+ by atomic layer deposition
We report in this work the optical properties of Er3+-doped Y2O3, deposited by radical enhanced atomic layer deposition. Specifically, the 1.53 µm absorption cross section of Er3+ in Y2O3 was measured by cavity ring-down spectroscopy to be (1.9±0.5)×10-20 cm2, about two times that for Er3+ in SiO2. This is consistent with the larger Er3+ effective absorption cross section at 488 nm, determined based on the 1.53 µm photoluminescence yield as a function of the pump power. X-ray photoelectron spectroscopy and Rutherford backscattering spectroscopy were used to determine the film composition, which in turn was used to analyze the extended x-ray absorption fine structure data, showing that Er was locally coordinated to only O in the first shell and its second shell was a mixture of Y and Er. These results demonstrated that the optical properties of Er3+-doped Y2O3 are enhanced, likely due to the fully oxygen coordinated, spatially controlled, and uniformly distributed Er3+ dopants in the host. These findings are likely universal in rare-earth doped oxide materials, making it possible to design materials with improved optical properties for their use in optoelectronic devices
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