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Synthesis of refractory organic matter in the ionized gas phase of the solar nebula

机译:太阳星云离子化气相中难熔有机物的合成

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摘要

In the nascent solar system, primitive organic matter was a major contributor of volatile elements to planetary bodies, and could have played a key role in the development of the biosphere. However, the origin of primitive organics is poorly understood. Most scenarios advocate cold synthesis in the interstellar medium or in the outer solar system. Here, we report the synthesis of solid organics under ionizing conditions in a plasma setup from gas mixtures (H2(O)−CO−N2−noble gases) reminiscent of the protosolar nebula composition. Ionization of the gas phase was achieved at temperatures up to 1,000 K. Synthesized solid compounds share chemical and structural features with chondritic organics, and noble gases trapped during the experiments reproduce the elemental and isotopic fractionations observed in primitive organics. These results strongly suggest that both the formation of chondritic refractory organics and the trapping of noble gases took place simultaneously in the ionized areas of the protoplanetary disk, via photon- and/or electron-driven reactions and processing. Thus, synthesis of primitive organics might not have required a cold environment and could have occurred anywhere the disk is ionized, including in its warm regions. This scenario also supports N2 photodissociation as the cause of the large nitrogen isotopic range in the solar system.
机译:在新生的太阳系中,原始有机物质是行星体内挥发性元素的主要来源,并且可能在生物圈的发展中发挥了关键作用。但是,对原始有机物的起源知之甚少。大多数情况都主张在星际介质或太阳系外部进行冷合成。在这里,我们报道了在电离条件下,在等离子体装置中,由混合气体(H2(O)-CO-N2-稀有气体)合成的有机有机物,让人联想到原生太阳星云的组成。在高达1,000 K的温度下实现了气相的电离。合成的固体化合物与软骨状有机物具有相同的化学和结构特征,并且在实验过程中捕获的稀有气体重现了原始有机物中观察到的元素和同位素分馏。这些结果强烈表明,通过光子和/或电子驱动的反应和加工,在原行星盘的离子化区域中,同时发生了软骨质难熔有机物的形成和稀有气体的捕获。因此,原始有机物的合成可能并不需要寒冷的环境,并且可能发生在磁盘被电离的任何地方,包括在温暖的区域。这种情况也支持N2光解离,这是太阳系中氮同位素范围较大的原因。

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