量子化学计算对系外行星科学、行星天文学和天体物理学的影响

D. Kao, M. Gacesa, R. Wentzcovitch, S. Domagal‐Goldman, R. Kopparapu, S. Klippenstein, S. Charnley, W. Henning, J. Renaud, P. Romani, Yuni Lee, C. Nixon, K. Jackson, M. Cordiner, N. Lombardo, S. Wieman, V. Airapetian, V. Allen, D. Pidhorodetska, E. Kohler, J. Moses, T. Livengood, D. N. Simkus, N. Planavsky, C. Dong, D. Yuen, A. Berg, A. Pavlov, J. Fortney
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引用次数: 1

摘要

NASA的几个任务(TESS、JWST、WFIRST等)和任务概念(LUVOIR、HabEx和OST)强调对系外行星的探索和表征,以及对星际介质的研究。我们预计系外行星上存在着更广泛的化学环境,因此需要从相应的更广泛的化学反应中获得数据。同样,天体物理环境中存在的条件与实验室化学动力学研究中传统探索的条件非常不同。在这些领域,量子力学理论通过经过充分验证的化学动力学模型应用于重要的反应,可以填补关键的知识空白。量子化学计算也被引入到研究行星内部,光化学逃逸,以及许多关键的化学途径(如益生元环境,污染等)。经过多年相关量子化学理论的发展和计算能力的重大进步,量子化学模拟目前已经足够成熟,能够以与实验相竞争的精度描述真实系统。因此,在许多情况下,当进行实验太困难、太昂贵、太危险或根本不可能时,这些方法已成为可能的最佳选择。在本白皮书中,介绍了支持系外行星科学、行星天文学和天体物理学的几个现有量子化学研究,并讨论了与任务科学目标相关的改进模型的潜在积极影响。最后,提出了科学界加强NASA相关研究工作的几点建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impacts of Quantum Chemistry Calculations on Exoplanetary Science, Planetary Astronomy, and Astrophysics
Several of NASA missions (TESS, JWST, WFIRST, etc.) and mission concepts (LUVOIR, HabEx, and OST) emphasize the exploration and characterization of exoplanets, and the study of the interstellar medium. We anticipate that a much broader set of chemical environments exists on exoplanets, necessitating data from a correspondingly broader set of chemical reactions. Similarly, the conditions that exist in astrophysical environments are very different from those traditionally probed in laboratory chemical kinetics studies. These are areas where quantum mechanical theory, applied to important reactions via well-validated chemical kinetics models, can fill a critical knowledge gap. Quantum chemical calculations are also introduced to study interior of planets, photochemical escape, and many critical chemical pathways (e.g. prebiotic environments, contaminations, etc.) After years of development of the relevant quantum chemical theories and significant advances in computational power, quantum chemical simulations have currently matured enough to describe real systems with an accuracy that competes with experiments. These approaches, therefore, have become the best possible alternative in many circumstances where performing experiments is too difficult, too expensive, or too dangerous, or simply not possible. In this white paper, several existing quantum chemical studies supporting exoplanetary science, planetary astronomy, and astrophysics are described, and the potential positive impacts of improved models associated with scientific goals of missions are addressed. In the end, a few recommendations from the scientific community to strengthen related research efforts at NASA are provided.
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