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Polycyclic aromatic hydrocarbon processing by cosmic rays

机译:宇宙射线加工多环芳烃

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Context. Cosmic rays are present in almost all phases of the ISM. Polycyclic aromatic hydrocarbons (PAHs) and cosmic rays represent an abundant and ubiquitous component of the interstellar medium. However, the interaction between them has never before been fully investigated. Aims. To study the effects of cosmic ray ion (H, He, CNO and Fe-Co-Ni) and electron bombardment of PAHs in galactic and extragalactic environments. Methods. We calculate the nuclear and electronic interactions for collisions between PAHs and cosmic ray ions and electrons with energies between 5?MeVucleon and 10?GeV, above the threshold for carbon atom loss, in normal galaxies, starburst galaxies and cooling flow galaxy clusters. Results. The timescale for PAH destruction by cosmic ray ions depends on the electronic excitation energy E0 and on the amount of energy available for dissociation. Small PAHs are destroyed faster, with He and the CNO group being the more effective projectiles. For electron collisions, the lifetime is independent of the PAH size and varies with the threshold energy T0. Conclusions. Cosmic rays process the PAHs in diffuse clouds, where the destruction due to interstellar shocks is less efficient. In the hot gas filling galactic halos, outflows of starburst galaxies and intra-cluster medium, PAH destruction is dominated by collisions with thermal ions and electrons, but this mechanism is ineffective if the molecules are in denser cloudlets and isolated from the hot gas. Cosmic rays can access the denser clouds and together with X-rays will set the lifetime of those protected PAHs. This limits the use of PAHs as a “dye” for tracing the presence of cold entrained material.
机译:上下文。 ISM的几乎所有阶段都存在宇宙射线。多环芳烃(PAHs)和宇宙射线代表星际介质中丰富而普遍存在的成分。但是,它们之间的相互作用从未得到过充分的研究。目的研究宇宙射线离子(H,He,CNO和Fe-Co-Ni)在银河和银河外环境中对PAHs的电子轰击作用。方法。我们计算出在正常星系,星爆星系和冷却流星系团中,PAHs与宇宙射线离子和能量在5?MeV /核子和10?GeV之间的碳原子损失阈值以上的电子之间的碰撞的核和电子相互作用。结果。宇宙射线离子破坏PAH的时间尺度取决于电子激发能E0和可用于解离的能量数量。小型PAH的销毁速度更快,其中He和CNO组是更有效的弹丸。对于电子碰撞,寿命与PAH大小无关,并且随阈值能量T0而变化。结论。宇宙射线在弥漫的云层中处理多环芳烃,其中星际震荡造成的破坏效率较低。在充满热气的银河光晕,星爆星系和集群内部介质的流出中,PAH的破坏主要是与热离子和电子的碰撞所致,但是,如果分子处于更密集的小分子中并与热气隔离,则该机制无效。宇宙射线可以进入更密集的云层,并且与X射线一起可以设定受保护PAH的寿命。这限制了PAHs作为“染料”用于追踪冷夹带物质的存在。

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