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通过高电离碳等离子体的氮电荷态的正确计算。

Correct calculation of nitrogen charge state passing through highly ionized carbon plasmas.

作者信息

Barriga-Carrasco Manuel D, Vázquez-Moyano José

机构信息

E.T.S.I. Industrial, Universidad de Castilla-La Mancha, E-13071 Ciudad Real, Spain.

出版信息

Phys Rev E. 2021 Jul;104(1-2):015217. doi: 10.1103/PhysRevE.104.015217.

Abstract

In the present work, we reanalyze the energy loss experimental data from Cayzac et al. [Nat. Commun. 8, 15693 (2017)10.1038/ncomms15693] using our successful ion charge state theoretical model. We predict lower nitrogen charge values, from 3.5+ to 5.0+, than the ones calculated by Cayzac et al., fitting better to their data. For energy loss estimations, we use the same stopping model, so our predictions agree better with the experimental data only due to our charge state model. Different projectile electron loss and capture processes are taken into account to estimate the projectile charge state. The projectile electron loss, or ionization, with plasma ions and free electrons are considered. On the other hand, the projectile electron capture, or recombination, with plasma free or bound electrons are also considered. The projectile ionization with plasma ions is shown as the main factor that modifies the mean charge of the projectile. Here, the new Kaganovich fitting formula for this projectile ionization is used because it seems to be more accurate than Gryzinsky's fitting in the low energy range. Our charge state model fits better with experimental data than any other model in the bibliography. Thus, it should be considered in any charge state and any energy loss estimation to obtain reliable results in future work.

摘要

在本工作中,我们使用我们成功的离子电荷态理论模型重新分析了Cayzac等人[《自然·通讯》8, 15693 (2017)10.1038/ncomms15693]的能量损失实验数据。我们预测的氮电荷值比Cayzac等人计算的值更低,在3.5+到5.0+之间,与他们的数据拟合得更好。对于能量损失估计,我们使用相同的阻止模型,所以我们的预测仅由于我们的电荷态模型而与实验数据更吻合。考虑了不同的弹丸电子损失和俘获过程来估计弹丸电荷态。考虑了弹丸与等离子体离子和自由电子的电子损失,即电离。另一方面,也考虑了弹丸与等离子体自由或束缚电子的电子俘获,即复合。弹丸与等离子体离子的电离被证明是改变弹丸平均电荷的主要因素。这里,使用了这个弹丸电离的新的卡加诺维奇拟合公式,因为它在低能量范围内似乎比格里津斯基的拟合更准确。我们的电荷态模型比文献中的任何其他模型都更符合实验数据。因此,在未来的工作中,为了获得可靠的结果,在任何电荷态和任何能量损失估计中都应该考虑它。

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