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Selection of Targets and Ion Sources for RIB Generation at the Holifield Radioactive Ion Beam Facility

Selection of Targets and Ion Sources for RIB Generation at the Holifield Radioactive Ion Beam Facility
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Total Pages: 38
Release: 1995
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In this report, the authors describe the performance characteristics for a selected number of target ion sources that will be employed for initial use at the Holifield Radioactive Ion Beam Facility (HRIBF) as well as prototype ion sources that show promise for future use for RIB applications. A brief review of present efforts to select target materials and to design composite target matrix/heat-sink systems that simultaneously incorporate the short diffusion lengths, high permeabilities, and controllable temperatures required to effect fast and efficient diffusion release of the short-lived species is also given.


Targets for Ion Sources for RIB Generation at the Holifield Radioactive Ion Beam Facility

Targets for Ion Sources for RIB Generation at the Holifield Radioactive Ion Beam Facility
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Total Pages: 55
Release: 1995
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ISBN:

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The Holifield Radioactive Ion Beam Facility (HRIBF), now under construction at the Oak Ridge National Laboratory, is based on the use of the well-known on-line isotope separator (ISOL) technique in which radioactive nuclei are produced by fusion type reactions in selectively chosen target materials by high-energy proton, deuteron, or He ion beams from the Oak Ridge Isochronous Cyclotron (ORIC). Among several major challenges posed by generating and accelerating adequate intensities of radioactive ion beams (RIBs), selection of the most appropriate target material for production of the species of interest is, perhaps, the most difficult. In this report, we briefly review present efforts to select target materials and to design composite target matrix/heat-sink systems that simultaneously incorporate the short diffusion lengths, high permeabilities, and controllable temperatures required to effect maximum diffusion release rates of the short-lived species that can be realized at the temperature limits of specific target materials. We also describe the performance characteristics for a selected number of target ion sources that will be employed for initial use at the HRIBF as well as prototype ion sources that show promise for future use for RIB applications.


High-Efficiency Target-Ion Sources for RIB Generation

High-Efficiency Target-Ion Sources for RIB Generation
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Total Pages: 5
Release: 2001
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In this report, emphasis is placed on issues related to selection and design of high-temperature, ion sources that have demonstrated the high ionization efficiency, species versatility, and operational reliability required at ISOL based radioactive ion beam facilities. In designing sources for ISOL applications, careful attention must be given to the following: selecting the most appropriate materials of construction, coupling of the vapor transport system, ion optics, operational parameters, thermal transport properties, emittances, ionization efficiencies and engineering details for safe handling in the high-level radioactivity radiation fields incumbent at such facilities. Included in the article are descriptions and performance data for high temperature, positive (electron-impact and surface-ionization) and negative (kinetic-ejection and surface-ionization) ion sources, as well as, low temperature, batch-mode negative-ion sources, developed for processing long-lived isotopes, that have been principal contributors to recent successes held at the Holifield Radioactive Ion Beam Facility.


Selection of RIB Targets Using Ion Implantation at the Holifield Radioactive Ion Beam Facility

Selection of RIB Targets Using Ion Implantation at the Holifield Radioactive Ion Beam Facility
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Total Pages: 24
Release: 1995
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ISBN:

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Among several major challenges posed by generating and accelerating adequate intensities of RIBs, selection of the most appropriate target material is perhaps the most difficult because of the requisite fast and selective thermal release of minute amounts of the short-lived product atoms from the ISOL target in the presence of bulk amounts of target material. Experimental studies are under way at the Oak Ridge National Laboratory (ORNL) which are designed to measure the time evolution of implanted elements diffused from refractory target materials which are candidates for forming radioactive ion beams (RIBs) at the Holifield Radioactive Ion Beam Facility (HRIBF). The diffusion coefficients are derived by comparing experimental data with numerical solutions to a one-dimensional form of Fick's second law for ion implanted distributions. In this report, we describe the experimental arrangement, experimental procedures, and provide time release data and diffusion coefficients for releasing ion implanted 37Cl from Zr5Si3 and 75As, 79Br, and 78Se from Zr5Ge3 and estimates of the diffusion coefficients for35Cl, 63Cu, 65Cu, 69Ga and 71Ga diffused from BN; 35Cl, 63Cu, 65Cu, 69Ga, 75As, and 78Se diffused from C; 35Cl, 68Cu, 69Ga, 75As, and 78Se diffused from Ta.


Ionization Efficiency and Effusive Delay Time Characterization of High Temperature Target-ion Sources for RIB Generation

Ionization Efficiency and Effusive Delay Time Characterization of High Temperature Target-ion Sources for RIB Generation
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Total Pages: 5
Release: 1996
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Ion sources for radioactive ion beam (RIB) generation must efficiently ionize short-lived-radioactive nuclei released from on-line targets with minimal delay times. Delay times attributable to interactions between chemically active species and surfaces of the vapor transport system which are long compared to the half-life of the desired radioactive atom and/or low ionization efficiency of the target/ion source (TIS) will result in a severe reduction of the RM intensity available for research. We have developed complementary off-line techniques for directly measuring both effusive delay times and ionization efficiencies for chemically active species in high temperature TISs using only the stable complements of the radioactive element of interest. Equipment, designed and developed for these measurements, include: a high-temperature Ta valve; a differentially cooled injection nozzle; and a gaseous flow measurement and control system. These techniques are employed in a systematic investigation of fluorine transport and ionization in an electron-beam-plasma target/ion source (EBPTIS) designed for initial use at the Holifield Radioactive Ion Beam Facility (HRIBF).


Selection of RIB Targets Using Ion Implantation

Selection of RIB Targets Using Ion Implantation
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Total Pages: 3
Release: 1994
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Experimental studies are under way at the Oak Ridge National Laboratory (ORNL) which are designed to measure the time evolution, ionization efficiencies, and release efficiencies of implanted elements diffused from refractory target materials which are candidates for forming radioactive ion beams (RIBs) at the Holifield Radioactive Ion Beam Facility (HRIBF). The diffusion coefficients are derived by comparing experimental data with numerical solutions to a one-dimensional form of Fick's second law for ion implanted distributions. In this report, we describe the experimental arrangement and provide time release data and diffusion coefficients for releasing ion implanted Cl from Zr5Si3 and 75As, 79Br, and 78Se from Zr5Ge3.


A High Efficiency, Kinetic-Ejection Negative Ion Source for RIB Generation

A High Efficiency, Kinetic-Ejection Negative Ion Source for RIB Generation
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Total Pages: 11
Release: 1998
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Chemically active radioactive species, diffused from RIB target materials, often arrive at the ionization chamber of the source in a variety of molecular forms. Because of the low probability for simultaneously dissociating and efficiently ionizing the individual atomic constituents of molecules with conventional hot-cathode electron-impact ion sources, the species of interest are often distributed in several mass channels in the form of molecular side-band beams and consequently, their intensities are diluted. The sputter negative ion beam generation technique offers an efficient means for simultaneously dissociating and ionizing highly electronegative atomic species present in molecular carriers. We have incorporated these principles in the design and fabrication of a kinetic ejection negative ion source and evaluated its potential for generating {sup 17,18}F− beams for the Holifield Radioactive Ion Beam Facility astrophysics research program. The source utilizes Cs beams to bombard condensable fluorine compounds that emanate from a target material, such as Al2O3, and are transported to the cooled inner surface of a conical-geometry cathode where they are adsorbed. The energetic Cs beams efficiently dissociate these molecules and sputter their constituents. Since the work functions of cesiated surfaces are low, highly electronegative species such as fluorine are efficiently ionized in the sputter-injection process. Measured efficiencies for ionizing atomic fluorine, dissociated from condensable compounds that are formed by reactions of SF6 with fibrous Al2O3 material, exceed 6.5%. In this report, we describe the mechanical design features and principles of operation, and present emittance, F− yield and ionization efficiency data derived from off-line, experimental evaluation of the source.


The Holifield Radioactive Ion Beam Facility at the Oak Ridge National Laboratory

The Holifield Radioactive Ion Beam Facility at the Oak Ridge National Laboratory
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Total Pages: 11
Release: 1998
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The Holifield Radioactive Ion Beam Facility (HRIBF) is a first generation national user facility for nuclear physics and nuclear astrophysics research with radioactive ion beams (RIBS). The reconfiguration, construction, and equipment-commissioning phases have been completed and the beam development program is in progress. In this article, descriptions of the facility and newly implemented experimental equipment for use in the nuclear and astrophysics programs will be given and an outline of the initial experimental program will be presented. Special target/ion source related problems, endemic to the production of specific short-lived RIBs will be discussed. In addition, plans, which involve either a 200-MeV or a 1-GeV proton-linac driver for a second-generation ISOL facility, will be presented.