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- W2888339904 abstract "Neutron-deficient selenium isotopes are thought to undergo a rapid shape change from a prolate deformation near the line of beta stability towards oblate deformation around the line of $N=Z$. The point at which this shape change occurs is unknown, with inconsistent predictions from available theoretical models. A common feature in the models is the delicate nature of the point of transition, with the introduction of even a modest spin to the system sufficient to change the ordering of the prolate and oblate configurations. We present a measurement of the quadrupole moment of the first-excited state in radioactive $^{72}mathrm{Se}$---a potential point of transition---by safe Coulomb excitation. This is the first low-energy Coulomb excitation to be performed with a rare-isotope beam at the reaccelerated beam facility at the National Superconducting Cyclotron Laboratory. By demonstrating a negative spectroscopic quadrupole moment for the first-excited ${2}^{+}$ state, it is found that any low-spin shape change in neutron-deficient selenium does not occur until $^{70}mathrm{Se}$." @default.
- W2888339904 created "2018-08-31" @default.
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- W2888339904 date "2018-08-22" @default.
- W2888339904 modified "2023-10-17" @default.
- W2888339904 title "Localizing the Shape Transition in Neutron-Deficient Selenium" @default.
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- W2888339904 doi "https://doi.org/10.1103/physrevlett.121.082502" @default.
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