论文标题

$^{72} $ ga的核水平密度的集体增强及其对$^{71} $ ga(n,$γ$)$^{72} $ ga捕获横截面的影响

Collective enhancement in nuclear level density of $^{72}$Ga and its effect on $^{71}$Ga(n, $γ$)$^{72}$Ga capture cross-section

论文作者

Santra, Rajkumar, Dey, Balaram, Roy, Subinit, Palit, R., Laskar, Md. S. R., Pai, H., Rajbanshi, S., Ali, Sajad, Bhattacharjee, Saikat, Babra, F. S., Mukherjee, Anjali, Jadhav, S., Naidu, Balaji S, Vazhappilly, Abraham T., Pal, Sanjoy

论文摘要

在反应中测量的$γ$摄入的质子光谱和$^{72} $ ga nuclei使用统计模型(SM)计算。可以看出,通过使用Fermi Gas(FG)模型的NLD处方中,使用巨大的逆水平密度参数($ K $ = 11.2 MEV)来合理地解释了$γ$的质子光谱。 $ k $的大价值表示旋转增强,这与其他质量区域的较早结果一致。此外,旋转增强因子已包含在NLD中,并在SM计算中使用了$ K $ = 8.6 MEV的系统值,它很好地解释了$γ$ j的质子光谱。结果清楚地表明NLD中存在集体增强。随后,在TALYS计算中使用了具有集体增强的NLD,这是第一次计算$^{71} $ ga(n,$γ$)$^{72} $ ga捕获横截面。据观察,尽管在NLD中没有集体增强的FG模型以$^{72} $ GA预测捕获数据,而旋转增强校正FG模型超过了较高能量时的数据来预测数据。但是,在0.01 MeV至0.1 MEV的能量范围内,校正旋转增强的FG模型很好地描述了数据。因此,目前的工作表明,应在需要的情况下正确描述低能捕获横截面数据时,应考虑到集体增强。

The $γ$-gated proton spectra measured in the reactions $^{64}$Ni($^{9}$Be, p2n)$^{70}$Ga and $^{64}$Ni($^{9}$Be, pn)$^{71}$Ga, have been utilized to obtain the nuclear level density (NLD) of $^{71}$Ga and $^{72}$Ga nuclei by using the statistical model (SM) calculations. It is seen that the $γ$-gated proton spectrum are reasonably explained by using the large value of the inverse level density parameter ($k$ = 11.2 MeV) in the NLD prescription of the Fermi gas (FG) model. The large value of $k$ is indicative of the rotational enhancement, which is consistent with the earlier results in other mass regions. Furthermore, a rotational enhancement factor has been included in the NLD and used in the SM calculation keeping the systematic value of $k$=8.6 MeV and it explains the $γ$-gated proton spectrum nicely. The result clearly indicates the presence of collective enhancement in NLD. Subsequently, the NLD with collective enhancement has been utilized in the TALYS calculation, for the first time, to calculate the $^{71}$Ga(n, $γ$)$^{72}$Ga capture cross-section. It is observed that, while the FG model without the collective enhancement in the NLD for $^{72}$Ga under predicts the capture data, with the rotational enhancement correction the FG model over predicts the data by similar amount at higher energies. However, in the energy range of 0.01 MeV to 0.1 MeV, the FG model corrected for rotational enhancement describes the data quite well. Thus, the present work indicates that collective enhancement, whenever required, should be taken into account fro proper description of low energy capture cross section data.

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