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Электронный каталог: Forge, M. - First Experimental Measurement of Spin Splitting and Evidence for a Second 0*+ State in ²54)&...
Forge, M. - First Experimental Measurement of Spin Splitting and Evidence for a Second 0*+ State in ²54)&...

Статья
Автор: Forge, M.
Physical Review C: First Experimental Measurement of Spin Splitting and Evidence for a Second 0*+ State in ²54)&...
б.г.
ISBN отсутствует
Автор: Forge, M.
Physical Review C: First Experimental Measurement of Spin Splitting and Evidence for a Second 0*+ State in ²54)&...
б.г.
ISBN отсутствует
Статья
Forge, M.
First Experimental Measurement of Spin Splitting and Evidence for a Second 0*+ State in ²54)&sub(102)No&sub(152) / M.Forge, A.V.Yeremin, M.L.Chelnokov, V.I.Chepigin, A.V.Isaev, I.N.Izosimov, D.Katrasev, A.A.Kuznetsova, O.N.Malyshev, R.Mukhin, A.G.Popeko, Yu.A.Popov, B.Saylaubekov, A.I.Svirikhin, E.A.Sokol, M.S.Tezekbayeva, [a.o.]. – Text : electronic // Physical Review C. – 2026. – Vol. 114, No. 2. – P. 024324. – URL: https://doi.org/10.1103/qnyn-h7jt. – Bibliogr.: 37.
Background: Due to its large production cross section, *2*5*4 No is the most-studied nucleus in the transfermium region and has been the “pioneer” nucleus in many different types of studies ranging from in-beam and decay 𝛾-ray spectroscopy to 𝛾-ray calorimetry. *2*5*4 No is a well-deformed nucleus. At low excitation energy, the spins (I), parities (𝜋), and excitation energies of three rotational bandheads are known: the 0+ ground state; a two-quasiproton 𝐼&sup(𝜋)=3*+ state at an excitation energy of 987 keV, which decays promptly to the ground-state rotational band; and a long-lived 8*− state at 1297 keV, whose microscopic configuration is still under debate. Purpose: This paper reexamines the electromagnetic decay of the long-lived 8*− state in *2*5*4 No using the enhanced sensitivity to the detection of internal conversion electrons of the GABRIELA detector array installed at the focal plane of the recoil separator SHELS at the Joint Institute for Nuclear Research in Dubna. Methods: *2*5*4 No nuclei were produced in fusion-evaporation reactions between *4*8 Ca ions and the atoms of *2*0*8 Pb targets. The evaporation residues of interest were separated from the background of other reaction products by the recoil separator SHELS and transported to the GABRIELA decay station where the 𝛾 as well the internal-conversion decay from the 8*− isomer could be jointly observed for the first time. Standard spectroscopy techniques together with a Geant4-assisted analysis of the spectroscopic data were used to establish the decay scheme of the 8*− isomer. Results: The observed 𝛾 ray and internal-conversion-electron singles and coincidence spectra have revealed new decay branches from the 8*− isomer as well as new states lying below it. A 4*+ state has been established at 1203 keV above the ground sate. The presence of a 2*− octupole phonon state could also be suggested at 1114 keV. The spectrum of detected internal-conversion electrons has uncovered the existence of an intense electric monopole (𝐸0) contribution stemming from the decays of one or more states lying below the 3*+ state. These findings are discussed in the light of quasiparticle random-phase approximation (QRPA) based on the finite-range D1M Gogny force and a new extension of the discrete nonorthogonal shell model including a variation-after-projection approach. Conclusions: The newly identified 4*+ state is interpreted as the unfavored angular momentum coupling of two protons occupying the same single-particle configurations as the protons forming the previously known 3*+ state. The two states form what is called a Gallagher-Moskowski doublet. This interpretation is supported by both the QRPA and shell-model calculations. The energy difference between the 3*+ and 4*+ states provides the first experimental measurement of spin splitting between two quasiproton states in the actinide region. The excess 𝐸0 strength evidenced by the internal-conversion-electron spectrum is attributed to the decay of members of a second 0*+ 2 rotational band lying at 884 keV above the ground state, which is weakly populated in the decay of the 3+ band. Remarkably, a 0+ 2 state is obtained at 859 keV above the ground state in the new shell-model description of *2*5*4 No , which also reproduces the sequence and electromagnetic-decay properties of the ground-state and 3+ rotational bands.
ОИЯИ = ОИЯИ (JINR)2026
Forge, M.
First Experimental Measurement of Spin Splitting and Evidence for a Second 0*+ State in ²54)&sub(102)No&sub(152) / M.Forge, A.V.Yeremin, M.L.Chelnokov, V.I.Chepigin, A.V.Isaev, I.N.Izosimov, D.Katrasev, A.A.Kuznetsova, O.N.Malyshev, R.Mukhin, A.G.Popeko, Yu.A.Popov, B.Saylaubekov, A.I.Svirikhin, E.A.Sokol, M.S.Tezekbayeva, [a.o.]. – Text : electronic // Physical Review C. – 2026. – Vol. 114, No. 2. – P. 024324. – URL: https://doi.org/10.1103/qnyn-h7jt. – Bibliogr.: 37.
Background: Due to its large production cross section, *2*5*4 No is the most-studied nucleus in the transfermium region and has been the “pioneer” nucleus in many different types of studies ranging from in-beam and decay 𝛾-ray spectroscopy to 𝛾-ray calorimetry. *2*5*4 No is a well-deformed nucleus. At low excitation energy, the spins (I), parities (𝜋), and excitation energies of three rotational bandheads are known: the 0+ ground state; a two-quasiproton 𝐼&sup(𝜋)=3*+ state at an excitation energy of 987 keV, which decays promptly to the ground-state rotational band; and a long-lived 8*− state at 1297 keV, whose microscopic configuration is still under debate. Purpose: This paper reexamines the electromagnetic decay of the long-lived 8*− state in *2*5*4 No using the enhanced sensitivity to the detection of internal conversion electrons of the GABRIELA detector array installed at the focal plane of the recoil separator SHELS at the Joint Institute for Nuclear Research in Dubna. Methods: *2*5*4 No nuclei were produced in fusion-evaporation reactions between *4*8 Ca ions and the atoms of *2*0*8 Pb targets. The evaporation residues of interest were separated from the background of other reaction products by the recoil separator SHELS and transported to the GABRIELA decay station where the 𝛾 as well the internal-conversion decay from the 8*− isomer could be jointly observed for the first time. Standard spectroscopy techniques together with a Geant4-assisted analysis of the spectroscopic data were used to establish the decay scheme of the 8*− isomer. Results: The observed 𝛾 ray and internal-conversion-electron singles and coincidence spectra have revealed new decay branches from the 8*− isomer as well as new states lying below it. A 4*+ state has been established at 1203 keV above the ground sate. The presence of a 2*− octupole phonon state could also be suggested at 1114 keV. The spectrum of detected internal-conversion electrons has uncovered the existence of an intense electric monopole (𝐸0) contribution stemming from the decays of one or more states lying below the 3*+ state. These findings are discussed in the light of quasiparticle random-phase approximation (QRPA) based on the finite-range D1M Gogny force and a new extension of the discrete nonorthogonal shell model including a variation-after-projection approach. Conclusions: The newly identified 4*+ state is interpreted as the unfavored angular momentum coupling of two protons occupying the same single-particle configurations as the protons forming the previously known 3*+ state. The two states form what is called a Gallagher-Moskowski doublet. This interpretation is supported by both the QRPA and shell-model calculations. The energy difference between the 3*+ and 4*+ states provides the first experimental measurement of spin splitting between two quasiproton states in the actinide region. The excess 𝐸0 strength evidenced by the internal-conversion-electron spectrum is attributed to the decay of members of a second 0*+ 2 rotational band lying at 884 keV above the ground state, which is weakly populated in the decay of the 3+ band. Remarkably, a 0+ 2 state is obtained at 859 keV above the ground state in the new shell-model description of *2*5*4 No , which also reproduces the sequence and electromagnetic-decay properties of the ground-state and 3+ rotational bands.
ОИЯИ = ОИЯИ (JINR)2026
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