Energy-Dependent Beta-Gamma Circular Polarization of La140
D. E. Ohlms, J. J. Bosken, P. C. Simms
Abstract
D. E. Ohlms, J. J. Bosken, P. C. Simms
Abstract
The $\ensuremath{\beta}\ensuremath{-}\ensuremath{\gamma}$ circular polarization ${P}_{\ensuremath{\gamma}}$ has been measured as a function of the $\ensuremath{\beta}$-particle energy for ${\mathrm{La}}^{140}$ and for ${\mathrm{Co}}^{60}$. The ${\mathrm{Co}}^{60}$ results confirm that ${P}_{\ensuremath{\gamma}}$ is proportional to $\frac{v}{c}$. The results for the 2.2-MeV transition of ${\mathrm{La}}^{140}$ show that the original prediction for the vector-matrix-element ratio is not correct for this transition. However, the results are consistent with predictions based on the conserved-vector-current (CVC) theory if the approach suggested by Damgaard and Winther is followed. This interpretation yields information on third-forbidden matrix elements.
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The $\ensuremath{\beta}\ensuremath{-}\ensuremath{\gamma}$ circular polarization ${P}_{\ensuremath{\gamma}}$ has been measured as a function of the $\ensuremath{\beta}$-particle energy for ${\mathrm{La}}^{140}$ and for ${\mathrm{Co}}^{60}$. The ${\mathrm{Co}}^{60}$ results confirm that ${P}_{\ensuremath{\gamma}}$ is proportional to $\frac{v}{c}$. The results for the 2.2-MeV transition of ${\mathrm{La}}^{140}$ show that the original prediction for the vector-matrix-element ratio is not correct for this transition. However, the results are consistent with predictions based on the conserved-vector-current (CVC) theory if the approach suggested by Damgaard and Winther is followed. This interpretation yields information on third-forbidden matrix elements.
Key concepts: Physics, Energy (signal processing), BETA (programming language), Polarization (electrochemistry), Atomic physics, Crystallography, Quantum mechanics, Physical chemistry