论文标题

在压力和磁场下的两轨模型中的抗铁磁相和多临界点的展开

Unfolding of antiferromagnetic phases and multicritical points in a two-orbital model for Uranium compounds under pressure and magnetic field

论文作者

Magalhaes, S. G., Lausmann, A. C., Calegari, E. J., Riseborough, P. S.

论文摘要

我们在一个模型中研究了两个5F频段($α$或$β$字符)的模型中的多个临界点的发生,它们与单个巡回传导带杂交。 5F电子通过库仑和交换术语相互作用。 AF顺序参数是NéelVector,假定该矢量是由Ising Alisotropy固定的。施加的磁场是横向到各向异性轴的。如果没有场,我们的温度 - 压力相图表明,在低温下,随着压力增加,一阶相变发生在两个不同的抗磁磁相之间,即AF $ _1 $和AF $ _2 $之间。这两个阶段的特征是$δ_α$和$δ_β$给出的频段$α$和$β$的差距。当$δ_β>δ_α> 0 $时,AF $ _1 $相位发生,而在AF $ _2 $相位,差距满足$Δ_α>δ_β> 0 $。磁场的应用会在相图中产生巨大变化。 AF1和AF2阶段与后者获得圆顶形状,该圆顶形状最终被抑制了施加场的大值。在没有磁场的情况下压力下的相图的演变显示了多个智力点的存在。我们的结果表明,通过抑制某些多政治点和其他人的出现,通过同时施加压力和场来通过同时应用压力和场的演变。我们认为,这些结果可能与铀化合物物理学中的多政治点(经典和量子)的不断增长有关。

We investigate the occurrence of multicritical points under pressure and magnetic field in a model that describes two 5f bands (of either $α$ or $β$ characters) which hybridize with a single itinerant conduction band. The 5f-electrons interact through Coulomb and exchange terms. The AF order parameter is a Néel vector, which is assumed to be fixed by an Ising anisotropy. The applied magnetic field is transverse to the anisotropy axis. Without field, our results for the temperature - pressure phase diagram show that, at low temperatures, a first-order phase transition occurs between two distinct antiferromagnetic phases, AF$_1$ and AF$_2$, as the pressure is increased. The two phases are characterized by the gaps of bands $α$ and $β$ given by $Δ_α$ and $Δ_β$, respectively. The AF$_1$ phase occurs when $Δ_β>Δ_α>0$, while in the AF$_2$ phase, the gaps satisfy $Δ_α>Δ_β>0$. The application of a magnetic field produces a drastic change in the phase diagram. The AF1 and AF2 phases separate with the latter acquiring a dome shape which is eventually suppressed for large values of the applied field. The evolution of the phase diagram under pressure, without and with magnetic field, shows the presence of multicritical points. Our results show that the evolution of these multicritical points by the simultaneous application of pressure and field is also drastic with the suppression of some multicritical points and the emergence of others ones. We believe that these results may have relevance for the growing field of multicritical points (classical and quantum) in the physics of Uranium compounds.

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