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OUR COSMIC HERITAGE OF COMPLEX MOLECULES

机译:我们复杂分子的宇宙遗产

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The evolution of matter in the cosmos includes the produc-tion of elements which, over time, produces carbon and other heavy elements needed to form planets and life. The overall physics of the process and the environments in stars where carbon, nitrogen, and oxygen are formed are generally fairly well understood. It is carbon's particular properties of chemical bonding along with its high abun-dance that make it especially suited as the foundation for life. Over 120 organic molecules are found in interstellar space, and organic phases - some with slight enrichment of one "chiral-enantiomeric" form over the other - are known in meteorites. Delivery of this material to the Earth during formation of the planets was aided by the early pres-ence of Jupiter, whose gravity ensured mixing of materially radially throughout the solar system. In the outer solar system, organic-rich worlds are present and chemistry is evolving there today - Titan is a particularly promising example in this regard. For life as we know it, liquid water is required (though forms of non-Earth life might exist in other liquids), and hence the inferred liquid water environments in Jupiter's moon Europa and Saturn's moon Enceladus are of keen interest along with environments on and within Titan that contain aqueous and non-aqueous liquids.
机译:宇宙中物质的演变包括元素的生产,随着时间的推移,产生碳和形成行星和寿命所需的其他重构。该过程的整体物理和恒星中的环境中形成的恒星,形成为碳,氮气和氧气的形成通常相当得很好地理解。它是化学粘合的碳的特殊性质,以及其高的舞蹈,使其特别适合作为生命的基础。在星际空间中发现超过120种有机分子,有机阶段 - 在另一个“手性 - 对映体”形状的有机相 - 在晶体中已知一些“手性 - 对映体”形式。在地球形成期间将这种材料递送到地球上,由木星的早期PreScce辅助,其重力确保在整个太阳系中的材料径向混合。在外太阳系统中,有机富有的世界存在,今天的化学在那里发展 - 泰坦是这方面的一个特别有希望的例子。对于我们所知,需要液态水(尽管其他液体中的非地球生命形式可能存在),因此木星的月球欧洲和土星月球欧洲群体中的推断液体水环境与环境中的环境一起敏锐在含有水性和非水液体的钛内。

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