论文标题

时间依赖的狄拉克方程适用于一蛋白放射性发射

Time-dependent Dirac equation applied to one-proton radioactive emission

论文作者

Oishi, Tomohiro

论文摘要

相对论的能量密度功能(REDF)理论已被开发并用于原子核的自洽曲线计算。质子发射放射性可以提供合适的参考,以提高REDF的预测能力,尤其是在质子滴管线上。一个人需要考虑量子隧道效应,该效应在发射核子发射放射性过程中起着至关重要的作用。然而,与非忠实案例相比,相对论量子隧道的研究较少。这项工作致力于基于相对论狄拉克形式主义的一般性($ 1p $)放射性的理论评估。为此,我开发了时间依赖性(TD)Dirac-Spinor计算,以模拟$ 1P $排放。通过利用与DD-PCX参数的相对论Hartree-Bogoliubov(RHB)计算,确定了时间依赖性Dirac Spinor的单蛋白电位。 TD-DIRAC计算应用于$^{37} $ SC和$^{39} $ SC核的$ 1P $排放,可以很好地近似为Valence Proton和Proton-Close-Shell核心。证明了$ 1p $ - 排放能量的灵敏度和对质量数的衰减宽度。由于系统的大小而存在显着的灵敏度,这会影响电势和能级的核部分,而库仑屏障则具有相同的原子数。计算出的$ 1p $能量和衰减的寿命与实验限制大致一致。预计目前的TD-DIRAC计算可广泛适用于富含质子的核素,以通过利用$ 1P $ -SISTION数据来改善REDF。

Relativistic energy-density functional (REDF) theory has been developed and utilized for self-consistent meanfield calculations of atomic nuclei. The proton-emitting radioactivity can provide a suitable reference to improve the predicting ability of REDF especially on the proton-drip line. One needs to consider the quantum tunneling effect, which plays an essential role in nucleon-emitting radioactive processes. However, the relativistic quantum tunneling has been less investigated compared with the non-relativistic case. This work is devoted to a theoretical evaluation of one-proton ($1p$) radioactivity based on the relativistic Dirac formalism. For this purpose, I develop the time-dependent (TD) Dirac-spinor calculation to simulate the $1p$ emission. By utilizing the relativistic Hartree-Bogoliubov (RHB) calculation with the DD-PCX parameters, single-proton potentials for the time-dependent Dirac spinor are determined. The TD-Dirac calculation is applied to the $1p$ emissions from the $^{37}$Sc and $^{39}$Sc nuclei, which can be well approximated as the valence proton and the proton-close-shell cores. The sensitivity of $1p$-emission energy and decaying width to the mass number is demonstrated. Remarkable sensitivity exists due to the size of system, which affects the nuclear part of potentials and energy levels, whereas the Coulomb barrier is common with the same atomic number. The calculated $1p$ energy and decaying lifetime are roughly consistent to the experimental limitation. The present TD-Dirac calculation is expected as applicable widely to proton-rich nuclides in order to improve the REDF by utilizing the $1p$-emission data.

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