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Magnetic vortex lattices in finite isospin chiral perturbation theory

机译:有限同位旋手性摄动理论中的磁涡格。

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We study finite isospin chiral perturbation theory (χPT) in a uniform external magnetic field and find the condensation energy of magnetic vortex lattices using the method of successive approximations (originally used by Abrikosov) near the upper critical point beyond which the system is in the normal vacuum phase. The difference between standard Ginzburg–Landau (GL) theory (or equivalently the Abelian Higgs model) andχPT arises due to the presence of additional momentum-dependent (derivative) interactions inχPT and the presence of electromagnetically neutral pions that interact with the charged pions via strong interactions but do not couple directly to the external magnetic field. We find that while the vortex lattice structure is hexagonal similar to vortices in GL theory, the condensation energy (relative to the normal vacuum state in a uniform, external magnetic field) is smaller (larger in magnitude) due to the presence of derivative interactions. Furthermore, we establish that neutral pions do not condense in the vortex lattice near the upper critical field.
机译:我们在均匀的外部磁场中研究有限等位旋手性扰动理论(χPT),并使用逐次逼近的方法(最初由Abrikosov使用)在系统处于正态的上临界点附近找到磁涡旋晶格的凝结能。真空阶段。标准的Ginzburg-Landau(GL)理论(或等效的Abelian Higgs模型)和χPT之所以出现差异,是由于χPT中存在其他动量相关(导数)相互作用,以及存在与中性离子通过强相互作用与带电离子相互作用的电磁中性离子相互作用,但不直接耦合到外部磁场。我们发现,虽然涡流晶格结构类似于GL理论中的涡流,呈六边形,但由于存在微分相互作用,其凝结能(相对于均匀,外部磁场中的正常真空状态)较小(大小较大)。此外,我们确定中性介子在上临界场附近的涡旋晶格中不凝结。

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