论文标题

$^8 $ li($ n,γ$)$^9 $ li反应的微观调查

Microscopic investigation of the $^8$Li($n, γ$)$^9$Li reaction

论文作者

McCracken, Callum, Navratil, Petr, McCoy, Anna, Quaglioni, Sofia, Hupin, Guillaume

论文摘要

$^8 $ li($ n,γ$)$^9 $ li反应在几种天体物理场景中起着重要作用。无法直接测量它,而间接实验到目前为止仅提供了横截面限制。理论预测因数量级而有所不同。在这项工作中,我们研究了$^9 $ li绑定的状态和低洼共振的属性,并计算了$^8 $ li($ n,γ$)$^9 $^9 $ li cross cross extraum in continuum(NCSMC),带有手性核子核子 - 核核和三核互动,并将三个核子相互作用作为唯一的输入。 NCSMC是适用于光核的AB INTION方法,它提供了适合计算低能核散射和反应的结合状态和散射状态的统一描述。我们的计算重现了实验已知的约束状态以及最低$ 5/2^ - $ $^9 $ li的共鸣。我们预计在5.38 meV处观察到的共振的$ 3/2^ - $ Spin-Parity分配。除了一个非常狭窄的$ 7/2^ - $共振,大概是与实验性6.43州相对应的,我们还发现了其他几个宽阔的低洼共振。我们计算出的$^8 $ li($ n,γ$)$^9 $ li横截面在1998年国家超导性回旋实验室库仑散落实验的限制范围内[Phys。修订版C {\ bf 57},959(1998)]。但是,它高于最近现象学研究中获得的横截面。它以直接的E1捕获为基础状态的主导,其共振贡献为$ \ sim0.2 $ MEV,由于E2/M1辐射的增强了$ 5/2^ - $共振。

The $^8$Li($n,γ$)$^9$Li reaction plays an important role in several astrophysics scenarios. It cannot be measured directly and indirect experiments have so far provided only cross section limits. Theoretical predictions differ by an order of magnitude. In this work we study the properties of $^9$Li bound states and low-lying resonances and calculate the $^8$Li($n,γ$)$^9$Li cross section within the no-core shell model with continuum (NCSMC) with chiral nucleon-nucleon and three-nucleon interactions as the only input. The NCSMC is an ab initio method applicable to light nuclei that provides a unified description of bound and scattering states well suited to calculate low-energy nuclear scattering and reactions. Our calculations reproduce the experimentally known bound states as well as the lowest $5/2^-$ resonance of $^9$Li. We predict a $3/2^-$ spin-parity assignment for the resonance observed at 5.38 MeV. In addition to the a very narrow $7/2^-$ resonance corresponding presumably to the experimental 6.43 MeV state, we find several other broad low-lying resonances. Our calculated $^8$Li($n,γ$)$^9$Li cross section is within the limits derived from the 1998 National Superconducting Cyclotron Laboratory Coulomb-dissociation experiment [Phys. Rev. C {\bf 57}, 959 (1998)]. However, it is higher than cross sections obtained in recent phenomenological studies. It is dominated by a direct E1 capture to the ground state with a resonant contribution at $\sim0.2$ MeV due to E2/M1 radiation enhanced by the $5/2^-$ resonance.

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