Can comets deliver prebiotic molecules to rocky exoplanets?

IF 2.9 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences Pub Date : 2023-11-01 DOI:10.1098/rspa.2023.0434
R. J. Anslow, A. Bonsor, P. B. Rimmer
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Abstract

In this work, we consider the potential of cometary impacts to deliver complex organic molecules and the prebiotic building blocks required for life to rocky exoplanets. Numerical experiments have demonstrated that for these molecules to survive, impacts at very low velocities are required. This work shows that for comets scattered from beyond the snow-line into the habitable zone, the minimum impact velocity is always lower for planets orbiting Solar-type stars than M-dwarfs. Using both an analytical model and numerical N-body simulations, we show that the lowest velocity impacts occur onto planets in tightly packed planetary systems around high-mass (i.e. Solar-mass) stars, enabling the intact delivery of complex organic molecules. Impacts onto planets around low-mass stars are found to be very sensitive to the planetary architecture, with the survival of complex prebiotic molecules potentially impossible in loosely packed systems. Rocky planets around M-dwarfs also suffer significantly more high velocity impacts, potentially posing unique challenges for life on these planets. In the scenario that cometary delivery is important for the origins of life, this study predicts the presence of biosignatures will be correlated with (i) decreasing planetary mass (i.e. escape velocity), (ii) increasing stellar-mass and (iii) decreasing planetary separation (i.e. exoplanets in tightly-packed systems).
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彗星能将生命起源前的分子运送到岩石系外行星上吗?
在这项工作中,我们考虑了彗星撞击的潜力,将复杂的有机分子和生命所需的益生元构建块传递到岩石系外行星。数值实验表明,要使这些分子存活下来,必须以非常低的速度撞击。这项工作表明,对于从雪线以外分散到可居住区域的彗星,围绕太阳型恒星运行的行星的最小撞击速度总是低于m型矮星。通过分析模型和数值n体模拟,我们表明,在高质量(即太阳质量)恒星周围紧密排列的行星系统中,最低速度的撞击发生在行星上,从而能够完整地传递复杂的有机分子。对低质量恒星周围行星的撞击被发现对行星结构非常敏感,复杂的益生元分子在松散的系统中可能不可能存活。m矮星周围的岩石行星也会遭受更多的高速撞击,这对这些行星上的生命构成了潜在的独特挑战。在彗星传递对生命起源很重要的情况下,这项研究预测生物特征的存在将与(i)行星质量的减少(即逃逸速度),(ii)恒星质量的增加和(iii)行星分离的减少(即紧密包装系统中的系外行星)相关。
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来源期刊
CiteScore
6.40
自引率
5.70%
发文量
227
审稿时长
3.0 months
期刊介绍: Proceedings A has an illustrious history of publishing pioneering and influential research articles across the entire range of the physical and mathematical sciences. These have included Maxwell"s electromagnetic theory, the Braggs" first account of X-ray crystallography, Dirac"s relativistic theory of the electron, and Watson and Crick"s detailed description of the structure of DNA.
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