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Neutron stars in the laboratory

机译:中子星在实验室

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摘要

Neutron stars are astrophysical laboratories of many extremes of physics. Their rich phenomenology provides insights into the state and composition of matter at densities which cannot be reached in terrestrial experiments. Since the core of a mature neutron star is expected to be dominated by superfluid and superconducting components, observations also probe the dynamics of large-scale quantum condensates. The testing and understanding of the relevant theory tend to focus on the interface between the astrophysics phenomenology and nuclear physics. The connections with low-temperature experiments tend to be ignored. However, there has been dramatic progress in understanding laboratory condensates (from the different phases of superfluid helium to the entire range of superconductors and cold atom condensates). In this review, we provide an overview of these developments, compare and contrast the mathematical descriptions of laboratory condensates and neutron stars and summarize the current experimental state-of-the-art. This discussion suggests novel ways that we may make progress in understanding neutron star physics using low-temperature laboratory experiments.
机译:中子恒星是极端物理学的天体物理实验室。他们丰富的现象学提供了在陆地实验中不能达到的密度的洞察力的洞察力。由于预期成熟中子星的核心由超氟和超导组分支配,因此观察结果还探讨了大规模量子缩合物的动态。对相关理论的测试和理解倾向于关注天体物理学现象学与核物理学之间的界面。具有低温实验的连接往往会被忽略。然而,在理解实验室缩合物(从超流氦的不同阶段到整个超导体和冷原子缩合物的不同阶段,存在显着进展。在本文中,我们概述了这些开发,比较和对比实验室冷凝水和中子恒星的数学描述,并总结了当前的实验最先进。该讨论表明我们可以使用低温实验室实验了解中子星物理学的新方法。

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