论文标题

芳族红外带载体的机械化学合成。星际碳质防尘粒类似物的自上而下的化学

Mechanochemical synthesis of Aromatic Infrared Band carriers. The top-down chemistry of interstellar carbonaceous dust grain analogues

论文作者

Dartois, Emmanuel, Charon, Emeline, Engrand, Cécile, Pino, Thomas, Sandt, Christophe

论文摘要

星际空间容纳纳米至微米大小的尘土。这些谷物种群的富含碳质成分在红外带中排放,数十年来使用望远镜和卫星观察到。它们是天体尘埃演化的关键要素。大多数这些乐队的确切载体仍然未知,在实验室中却没有很好地再现。在这项工作中,我们显示了无序芳香族和脂肪族类似物的高能机械化学合成提供了星际相关的灰尘颗粒。在氢气大气下的碳基固体的机械化学铣削会产生与芳族红外带(AIB)发射的天体物理观测值相匹配的颗粒。最能重现这些天文红外观测值的类似物的H/C比在5 $ \ pm $ 2%范围内。该值远低于弥漫性星际氢化的无定形碳,这是吸收中观察到的另一个银河粉尘晶粒成分,并且很可能对最芳香的碳质粉尘晶粒载体的氢化程度产生了约束。在AIB中观察到的一个宽带,在7.4-8.3 $μm范围内与氢含量相关,因此在产生的类似物中的结构演化。机械化学过程可以看作是刺激局部能量化学反应的实验反应器。它在产生的缺陷上引入了键障碍和氢化学附着,其作用类似于星际空间与固体的局部化学反应。从天体物理学的角度来看,这些实验室星际尘埃类似物将用于预测模拟的星际条件下的灰尘演化,包括恶劣的辐射环境。这样的星际类似物提供了一个机会,可以在其他恒星形成系统中获得有关物质循环的全球观点。

Interstellar space hosts nanometre- to micron-sized dust grains. The carbonaceous-rich component of these grain populations emits in infrared bands, observed remotely for decades with telescopes and satellites. They are a key ingredient of astrochemical dust evolution. The precise carriers for most of these bands are still unknown and not well reproduced in the laboratory. In this work, we show the high-energy mechanochemical synthesis of disordered aromatic and aliphatic analogues provides interstellar relevant dust particles. The mechanochemical milling of carbon-based solids under a hydrogen atmosphere produces particles with a spectroscopic match to astrophysical observations of aromatic infrared band (AIB) emission. The H/C ratio for the analogues that best reproduce these astronomical infrared observations lies in the 5$\pm$2% range. This value is much lower than diffuse interstellar hydrogenated amorphous carbons, another Galactic dust grain component observed in absorption, and it most probably provides a constraint on the hydrogenation degree of the most aromatic carbonaceous dust grain carriers. A broad band, observed in AIBs, in the 7.4-8.3 $μ$m range is correlated to the hydrogen content, and thus the structural evolution in the analogues produced. The mechanochemical process can be seen as an experimental reactor to stimulate local energetic chemical reactions. It introduces bond disorder and hydrogen chemical attachment on the produced defects, with an effect similar to the interstellar space very localised chemical reactions with solids. From the vantage point of astrophysics, these laboratory interstellar dust analogues will be used to predict dust grain evolution under simulated interstellar conditions, including harsh radiative environments. Such interstellar analogues offer an opportunity to derive a global view on the cycling of matter in other star forming systems.

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