论文标题

手性孤子晶格的形成

Formation of Chiral Soliton Lattice

论文作者

Higaki, Tetsutaro, Kamada, Kohei, Nishimura, Kentaro

论文摘要

手性孤子晶格(CSL)是一个晶格结构,该晶格结构是由平行间隔平行排列的结构壁组成,在存在背景磁场和有限(Baryon)化学电位的情况下,由于拓扑术语源于手性静脉。我们根据Nambu-Goto-type有效理论研究了其从真空状态中研究其形成,并将CSL描述为被涡流或弦乐循环包围的域壁盘。我们表明,当磁场足够强时,域壁通过量子隧穿成核。我们评估其成核速率,并确定不再被指数抑制成核速率的临界磁场强度。我们将此分析应用于两种培养物QCD的中性锥子以及在外部磁场下具有有限(BARYON)化学电位的轴状颗粒(ALP)。在前一种情况下,即使CSL状态在能量稳定上比真空状态更稳定,并且对于足够强的磁场而言,成核速率也不足够大,因此它的成核的成核不会被指数置于指数上的抑制和促进,而不会遭受带电pion pion的速度不稳定性的影响。在后一种情况下,我们确认阿尔卑斯山的有效相互作用通常包括CSL状态所需的拓扑项。我们表明,如果系统的磁场强度和化学电位略大于轴突衰减常数的尺度,则促进了ALP CSL的形成。

The Chiral Soliton Lattice (CSL) is a lattice structure composed of domain walls aligned in parallel at equal intervals, which is energetically stable in the presence of a background magnetic field and a finite (baryon) chemical potential due to the topological term originated from the chiral anomaly. We study its formation from the vacuum state, with describing the CSL as a layer of domain-wall disks surrounded by the vortex or string loop, based on the Nambu-Goto-type effective theory. We show that the domain wall nucleates via quantum tunneling when the magnetic field is strong enough. We evaluate its nucleation rate and determine the critical magnetic field strength with which the nucleation rate is no longer exponentially suppressed. We apply this analysis to the neutral pion in the two-flavor QCD as well as the axion-like particles (ALPs) with a finite (baryon) chemical potential under an external magnetic field. In the former case, even though the CSL state is more energetically stable than the vacuum state and the nucleation rate becomes larger for sufficiently strong magnetic field, it cannot be large enough so that the nucleation of the domain walls is not exponentially suppressed and promoted, without suffering from the tachyonic instability of the charged pion fluctuations. In the latter case, we confirm that the effective interaction of the ALPs generically includes the topological term required for the CSL state to be energetically favored. We show that the ALP CSL formation is promoted if the magnetic field strength and the chemical potential of the system is slightly larger than the scale of the axion decay constant.

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