Ultra-light dark matter

IF 27.8 1区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Elisa G. M. Ferreira
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引用次数: 0

Abstract

Ultra-light dark matter is a class of dark matter models (DM), where DM is composed by bosons with masses ranging from \(10^{-24}\, \mathrm {eV}< m < \mathrm {eV}\). These models have been receiving a lot of attention in the past few years given their interesting property of forming a Bose–Einstein condensate (BEC) or a superfluid on galactic scales. BEC and superfluidity are some of the most striking quantum mechanical phenomena that manifest on macroscopic scales, and upon condensation, the particles behave as a single coherent state, described by the wavefunction of the condensate. The idea is that condensation takes place inside galaxies while outside, on large scales, it recovers the successes of \(\varLambda \)CDM. This wave nature of DM on galactic scales that arise upon condensation can address some of the curiosities of the behaviour of DM on small-scales. There are many models in the literature that describe a DM component that condenses in galaxies. In this review, we are going to describe those models, and classify them into three classes, according to the different non-linear evolution and structures they form in galaxies: the fuzzy dark matter (FDM), the self-interacting fuzzy dark matter (SIFDM), and the DM superfluid. Each of these classes comprises many models, each presenting a similar phenomenology in galaxies. They also include some microscopic models like the axions and axion-like particles. To understand and describe this phenomenology in galaxies, we are going to review the phenomena of BEC and superfluidity that arise in condensed matter physics, and apply this knowledge to DM. We describe how ULDM can potentially reconcile the cold DM picture with the small-scale behaviour. These models present a rich phenomenology that is manifest in different astrophysical consequences. We review here the astrophysical and cosmological tests used to constrain those models, together with new and future observations that promise to test these models in different regimes. For the case of the FDM class, the mass where this model has an interesting phenomenology on small-scales \( \sim 10^{-22}\, \mathrm {eV}\), is strongly challenged by current observations. The parameter space for the other two classes remains weakly constrained. We finalize by showing some predictions that are a consequence of the wave nature of this component, like the creation of vortices and interference patterns, that could represent a smoking gun in the search of these rich and interesting alternative class of DM models.

超轻暗物质
超轻暗物质是一类暗物质模型(DM),其中DM是由(10^{-24}\, \mathrm {eV}<m<\mathrm {eV}\)质量不等的玻色子组成的。这些模型在过去几年里受到了广泛关注,因为它们具有在星系尺度上形成玻色-爱因斯坦凝聚态(BEC)或超流体的有趣特性。玻色-爱因斯坦凝聚态和超流体是在宏观尺度上表现出来的一些最引人注目的量子力学现象,在凝聚时,粒子表现为单一的相干态,由凝聚态的波函数来描述。我们的想法是,凝聚发生在星系内部,而在星系外部,在大尺度上,它恢复了(\\varLambda \)CDM的成功。DM在星系尺度上的这种波浪性质是在凝结时产生的,它可以解决DM在小尺度上行为的一些问题。文献中有许多模型描述了在星系中凝聚的DM成分。在这篇综述中,我们将描述这些模型,并根据它们在星系中形成的不同非线性演化和结构,把它们分为三类:模糊暗物质(FDM)、自相互作用模糊暗物质(SIFDM)和DM超流体。每一类暗物质都由许多模型组成,每个模型在星系中都呈现出类似的现象。它们还包括一些微观模型,如轴子和类轴子粒子。为了理解和描述星系中的这种现象,我们将回顾凝聚态物理中出现的BEC和超流现象,并将这些知识应用到DM中。我们描述了超大规模粒子模型如何有可能协调冷DM图景与小尺度行为。这些模型呈现出丰富的现象学,表现为不同的天体物理后果。我们在这里回顾了用来约束这些模型的天体物理和宇宙学检验,以及有望在不同状态下检验这些模型的新的和未来的观测。就FDM类而言,该模型在小尺度上具有有趣现象学的质量(\sim 10^{-22}\, \mathrm {eV}\),受到了当前观测的强烈挑战。其他两类的参数空间仍然受到微弱的约束。最后,我们展示了一些预言,这些预言是这一成分的波性质的结果,比如涡旋和干涉模式的产生,它们可能是寻找这些丰富而有趣的DM模型的替代类别的烟枪。
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来源期刊
The Astronomy and Astrophysics Review
The Astronomy and Astrophysics Review 地学天文-天文与天体物理
CiteScore
45.00
自引率
0.80%
发文量
7
期刊介绍: The Astronomy and Astrophysics Review is a journal that covers all areas of astronomy and astrophysics. It includes subjects related to other fields such as laboratory or particle physics, cosmic ray physics, studies in the solar system, astrobiology, instrumentation, and computational and statistical methods with specific astronomical applications. The frequency of review articles depends on the level of activity in different areas. The journal focuses on publishing review articles that are scientifically rigorous and easily comprehensible. These articles serve as a valuable resource for scientists, students, researchers, and lecturers who want to explore new or unfamiliar fields. The journal is abstracted and indexed in various databases including the Astrophysics Data System (ADS), BFI List, CNKI, CNPIEC, Current Contents/Physical, Chemical and Earth Sciences, Dimensions, EBSCO Academic Search, EI Compendex, Japanese Science and Technology, and more.
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