论文标题

水冰阶段辐射天文学的实验室实验

Laboratory Experiments on the Radiation Astrochemistry of Water Ice Phases

论文作者

Mifsud, Duncan V., Hailey, Perry A., Herczku, Péter, Juhász, Zoltán, Kovács, Sándor T. S., Sulik, Béla, Ioppolo, Sergio, Kaňuchová, Zuzana, McCullough, Robert W., Paripás, Béla, Mason, Nigel J.

论文摘要

水(H2O)冰是宇宙的普遍成分,在各种星际和太阳系环境中被检测到,在各种星际和太阳系环境中,辐射在其物理化学转化中起着重要作用。尽管已经对H2O天体物理冰类似物的辐射化学进行了充分的研究,但不同固体相的直接和系统比较很少,通常仅限于两个阶段。在本文中,我们描述了对无定形固体水(ASW),约束的无定形冰(RAI)以及在20 K处的2 keV电子辐照(ASW)的2 keV电子辐照的结果,以进一步发现辐射物理学和化学对固体冰层的潜在依赖性。对四个研究的H2O冰相进行的中红外光谱分析表明,RAI,IC和IH阶段的电子照射导致它们的无形化(后者的过程较慢),而ASW进行了压实。由于辐射而产生的过氧化氢(H2O2)也有所不同,在阶段之间也有所不同,在受辐照的ASW中,产率最高。该观察结果是几个因素的累积结果,包括ASW中孔隙率和晶格缺陷的数量增加以及其较不宽的氢键网络。我们的结果具有天体物理的意义,尤其是在暴露于辐射场和温度梯度的H2O富含冰的星际和太阳系体的方面。

Water (H2O) ice is ubiquitous component of the universe, having been detected in a variety of interstellar and Solar System environments where radiation plays an important role in its physico-chemical transformations. Although the radiation chemistry of H2O astrophysical ice analogues has been well studied, direct and systematic comparisons of different solid phases are scarce and are typically limited to just two phases. In this article, we describe the results of an in-depth study of the 2 keV electron irradiation of amorphous solid water (ASW), restrained amorphous ice (RAI) and the cubic (Ic) and hexagonal (Ih) crystalline phases at 20 K so as to further uncover any potential dependence of the radiation physics and chemistry on the solid phase of the ice. Mid-infrared spectroscopic analysis of the four investigated H2O ice phases revealed that electron irradiation of the RAI, Ic, and Ih phases resulted in their amorphization (with the latter undergoing the process more slowly) while ASW underwent compaction. The abundance of hydrogen peroxide (H2O2) produced as a result of the irradiation was also found to vary between phases, with yields being highest in irradiated ASW. This observation is the cumulative result of several factors including the increased porosity and quantity of lattice defects in ASW, as well as its less extensive hydrogen-bonding network. Our results have astrophysical implications, particularly with regards to H2O-rich icy interstellar and Solar System bodies exposed to both radiation fields and temperature gradients.

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