Spin, Hyperfine Structure, and Nuclear Magnetic Dipole Moment of
- 15 July 1963
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 131 (2) , 700-707
- https://doi.org/10.1103/physrev.131.700
Abstract
The nuclear spin and hfs splitting of in the atomic ground state have been determined by the atomic beam magnetic resonance method. was produced in the reaction by allowing a 5-MeV deuteron beam from the Columbia Van de Graaff accelerator to impinge upon a gaseous target. The radioactive gas flowed continuously from the target chamber into the microwave discharge source of the atomic beam apparatus. A rotating-wheel deposition detector specially suited for shoft-lived radioactive atoms was used to detect the beam. The spin is found to be ½, in agreement with the shell-model prediction. The hfs splitting of in the state is observed to be 1037.23±0.07 Mc/sec, and the nuclear magnetic dipole moment of is deduced to be 0.7189±0.0008 nm.
Keywords
This publication has 15 references indexed in Scilit:
- Calculation of the Hyperfine Constants forandPhysical Review B, 1962
- Magnetic Moments of Mirror NucleiPhysical Review B, 1961
- Hyperfine Structure and Nuclear Electric Quadrupole Moment of17OProceedings of the Physical Society. Section B, 1957
- Spin, Magnetic Moment, and Hyperfine Structure ofPhysical Review B, 1954
- Hyperfine Structure Formulas forCouplingPhysical Review B, 1953
- On the Spin and Magnetic Moment ofPhysical Review B, 1951
- Interaction Effects on Radiative Transitions in NucleiPhysical Review B, 1951
- The Influence of Nuclear Structure on the Hyperfine Structure of Heavy ElementsPhysical Review B, 1950
- The Hyperfine Structure and Nuclear Moments of the Stable Chlorine IsotopesPhysical Review B, 1949
- Self-consistent field, including exchange and superposition of configurations, with some results for oxygenPhilosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences, 1939