Production of radioactive ion beams using the in-flight technique
Rev. Sci. Instrum. 71, 380 (2000); doi:10.1063/1.1150211
Issue Date: February 2000
You are not logged in to this journal. Log in
Reactions with a heavy projectile incident on a light target can be used for the efficient in-flight production of secondary radioactive beams. An overview of this technique is given using data on 17F beams produced via the p(17O, 17F)n and d(16O, 17F)n reactions. With primary 16,17O beam currents of 100 pnA, intensities of up to 2×106 17F/s on target were achieved. Using this beam, the p(17F,
)14O reaction was measured. ©2000 American Institute of Physics.
)14O reaction was measured. ©2000 American Institute of Physics.
| History: | Received 4 August 1999; accepted 5 November 1999 |
| Permalink: |
http://link.aip.org/link/?RSINAK/71/380/1 |
KEYWORDS and PACS
RADIOACTIVE ION BEAMS,
BEAM PRODUCTION,
EFFICIENCY,
PROTON REACTIONS,
DEUTERON REACTIONS,
NEUTRON DOSIMETRY,
BEAM CURRENTS,
OXYGEN 17,
FLUORINE 17,
OXYGEN 16 BEAMS,
OXYGEN 17 TARGET,
OXYGEN 14,
ION SOURCES,
CHARGED-PARTICLE TRANSPORT
- 29.25.Rm
Experimental methods and instrumentation for elementary-particle and nuclear physics Particle sources and targets Sources of radioactive nuclei - 29.25.Ni
Experimental methods and instrumentation for elementary-particle and nuclear physics Particle sources and targets Ion sources: positive and negative - YEAR: 2000
RELATED DATABASES
PUBLICATION DATA
0034-6748 (print)
1089-7623 (online)
REFERENCES (22)
For access to fully linked references, you need to log in.
For access to fully linked references, you need to Log in.
- Proceedings of the Fourth International Conference on Radioactive Nuclear Beams, Omiya, Japan, 3 June 1996, edited by S. Kubono, T. Kobayashi, and I. Tanihata, Nucl. Phys. A 616, 1c (1997), and references therein.
- Proceedings of ENAM98 (Exotic Nuclei and Atomic Masses), edited by B. M. Sherrill, D. J. Morrissey, and C. N. Davids [AIP Conf. Proc. 455, 1 (1998), and references therein].
- H. L. Ravn,
Nucl. Instrum. Methods Phys. Res. B 70, 107 (1992) . - D. Darquennes et al., Phys. Rev. C 42, R804 (1990).
- G. Münzenberg, H. Geissel, and C. Schneidenberger, Proceedings of the 13th International Conference on Electromagnetic Isotope Separators and Techniques Related to their Applications (EMIS-13), Bad Dürkheim, Germany, 2327 September 1996 [Nucl. Instrum. Methods. Phys. Res. 126, 1 (1997), and references therein].
- R. C. Haight et al.,
Nucl. Instrum. Methods Phys. Res. 212, 245 (1983) . - T. Yamaya et al.,
Nucl. Instrum. Methods Phys. Res. B 70, 374 (1992) . - A. Ozawa et al., RIKEN-AF-NP-236 (unpublished).
- J. J. Kolata, A. Morsad, X. J. Kong, R. E. Warner, F. D. Becchetti, W. Z. Liu, D. A. Roberts, and J. W. Jänecke,
Nucl. Instrum. Methods Phys. Res. B 40, 503 (1989) ;
J. J. Kolata et al., Phys. Rev. Lett. 81, 4580 (1998). - Hereafter, for simplicity, S(E,
,r,t), T(E,
,r,t), and Y(E,
,r,t) are simply labeled as S, T, and Y, unless their dependence on certain parameters is specifically addressed. In this case, these parameters are given in parentheses. - J. K. Bair, Phys. Rev. C 8, 120 (1973).
- J. D. Anderson et al., Phys. Rev. 177, 1416 (1969).
- W. Gruhle,
Nucl. Phys. A 186, 257 (1972) . - S. T. Thronton,
Nucl. Phys. A 137, 531 (1969) . - C. J. Oliver et al.,
Nucl. Phys. A 127, 567 (1969) . - J. F. Ziegler and J. P. Biersack, The Stopping Power of Ions in Solids (Pergamon, New York, 1985).
- R. C. Pardo and K. W. Shepard (unpublished).
- B. Harss et al. (unpublished).
- B. Harss et al., Proceedings of the XVIII International Linear Accelerator Conference, Geneva, Switzerland, CERN 96-07 2, 496 (1996).
- K. E. Rehm et al., Phys. Rev. Lett. 81, 3341 (1998).
- B. Harss et al., Phys. Rev. Lett. 82, 3964 (1999).
- A. Hershcovitch, Phys. Plasmas 5, 2130 (1998).







