论文标题
背景磁场和Schwinger效应中的量子相关性
Background magnetic field and quantum correlations in the Schwinger effect
论文作者
论文摘要
在这项工作中,我们考虑了两个复杂的标量场,这些标量磁场由它们的质量与恒定背景电气和磁场结合在$(3+1)$ - 尺寸Minkowski时空中,并随后研究了一些量化的量子,以量化构成粒子粒子粒度相关性的量子相关性。由于背景磁场本身不会引起Minkowski真空的衰变,因此我们的主要动机是研究由于电场和磁场引起的效果之间的相互作用。我们首先计算单个标量场的真空状态的纠缠熵。其次,我们考虑了两尺度场系统的一些最大纠缠状态,并计算对数负面性和相互信息。强调了这些结果与各州的电荷含量有关的定性差异。基于这些结果,我们建议背景磁场对加速框架中状态之间纠缠的降解的一些可能影响,用于带电的量子场。
In this work we consider two complex scalar fields distinguished by their masses coupled to constant background electric and magnetic fields in the $(3+1)$-dimensional Minkowski spacetime and subsequently investigate a few measures quantifying the quantum correlations between the created particle-antiparticle Schwinger pairs. Since the background magnetic field itself cannot cause the decay of the Minkowski vacuum, our chief motivation here is to investigate the interplay between the effects due to the electric and magnetic fields. We start by computing the entanglement entropy for the vacuum state of a single scalar field. Second, we consider some maximally entangled states for the two-scalar field system and compute the logarithmic negativity and the mutual information. Qualitative differences of these results pertaining to the charge content of the states are emphasised. Based upon these results, we suggest some possible effects of a background magnetic field on the degradation of entanglement between states in an accelerated frame, for charged quantum fields.