论文标题
标量调节理论中磁化中子星的轴对称平衡模型
Axisymmetric equilibrium models for magnetised neutron stars in Scalar-Tensor Theories
论文作者
论文摘要
为了解决我们对宇宙的理解中的一些长期存在的问题,已经提出了一般相对论的可能扩展,标量调整理论因其简单性而受到了很多关注。有趣的是,其中一些预测了在存在高度紧凑的物质分布(如中子星的情况下)的潜在可观察到的非线性现象,称为\ textit {自发标态化}。中子星是在极端条件下研究物质特性的理想实验室,尤其是众所周知,它们具有宇宙中最强的磁场。在这里,我们第一次提出了标量调整理论中磁性中子星的详细研究。首先,我们表明,基于\ textIt {扩展的固定状态}的一般相对论研究的形式主义很容易在存在非最终耦合标量场的情况下进行扩展,从而保留了其许多数值优势。然后,考虑到纯环形和纯粹的磁场的两个极端几何形状,我们对参数空间进行了一项研究,从而改变了磁场的强度和标量的强度。我们将结果与磁性的一般性溶液和未磁化标液溶液进行比较,显示了磁性和标量场之间的相互作用如何影响中子星的磁性和标态性能。特别是,我们将讨论集中在磁变形性,最大质量和标量范围上。
Among the possible extensions of General Relativity that have been put forward in order to address some long standing issues in our understanding of the Universe, Scalar-Tensor Theories have received a lot of attention for their simplicity. Interestingly, some of these predict a potentially observable non-linear phenomenon, known as \textit{spontaneous scalarisation}, in the presence of highly compact matter distributions, like the case of neutron stars. Neutron stars are ideal laboratories to investigate the properties of matter under extreme conditions, and in particular they are known to harbour the strongest magnetic fields in the Universe. Here, for the first time, we present a detailed study of magnetised neutron stars in Scalar-Tensor Theories. First, we show that the formalism developed for the study of magnetised neutron stars in General Relativity, based on the \textit{eXtended Conformally Flat Condition}, can easily be extended in the presence of a non-minimally coupled scalar field, retaining many of its numerical advantages. We then carry out a study of the parameter space considering the two extreme geometries of purely toroidal and purely poloidal magnetic fields, varying both the strength of the magnetic field and the intensity of scalarisation. We compare our results with magnetised general-relativistic solutions and un-magnetised scalarised solutions, showing how the mutual interplay between magnetic and scalar fields affect the magnetic and the scalarisation properties of neutron stars. In particular, we focus our discussion on magnetic deformability, maximum mass and range of scalarisation.