节点文献

Schwinger effect in a twice anisotropic holographic model

  • 推荐 CAJ下载
  • PDF下载
  • 不支持迅雷等下载工具,请取消加速工具后下载。

【作者】 常文彬侯德富

【Author】 Wen-Bin Chang;Defu Hou;College of Intelligent Systems Science and Engineering, Hubei Minzu University;Institute of Particle Physics and Key Laboratory of Quark and Lepton Physics (MOS), Central China Normal University;

【机构】 College of Intelligent Systems Science and Engineering, Hubei Minzu UniversityInstitute of Particle Physics and Key Laboratory of Quark and Lepton Physics (MOS), Central China Normal University

【摘要】 The Schwinger effect,a non-perturbative mechanism for particle production in strong fields,plays a crucial role in understanding quantum vacuum decay and high-energy phenomena,including heavy-ion collisions(HIC).Although holographic quantum chromodynamics(QCD) models have been widely used to study this effect,most treatments assume isotropy or consider only a single type of anisotropy,neglecting the interplay between spatial and magnetic anisotropies that arise in realistic HIC scenarios.A unified framework accounting for both anisotropies is needed to accurately model particle production.We investigate the Schwinger effect in a twice anisotropic holographic QCD model incorporating both spatial and magnetic anisotropies.Using the anti-de Sitter/conformal field theory correspondence,we compute the total potential of a particle-antiparticle pair to quantify how these anisotropies influence pair production.Our results show that the magnetic field(parameterized by cB and q3) enhances the Schwinger effect by lowering and narrowing the potential barrier,while increasing spatial anisotropy(controlled by v) suppresses the process by raising and widening the barrier.These findings demonstrate that magnetic and spatial anisotropies exert competing effects on particle production,emphasizing the necessity of treating both concurrently in holographic models.This work advances the theoretical description of the Schwinger effect in anisotropic environments,with implications for understanding non-equilibrium dynamics in HIC and other strongly coupled systems.

【Abstract】 The Schwinger effect,a non-perturbative mechanism for particle production in strong fields,plays a crucial role in understanding quantum vacuum decay and high-energy phenomena,including heavy-ion collisions(HIC).Although holographic quantum chromodynamics(QCD) models have been widely used to study this effect,most treatments assume isotropy or consider only a single type of anisotropy,neglecting the interplay between spatial and magnetic anisotropies that arise in realistic HIC scenarios.A unified framework accounting for both anisotropies is needed to accurately model particle production.We investigate the Schwinger effect in a twice anisotropic holographic QCD model incorporating both spatial and magnetic anisotropies.Using the anti-de Sitter/conformal field theory correspondence,we compute the total potential of a particle-antiparticle pair to quantify how these anisotropies influence pair production.Our results show that the magnetic field(parameterized by cB and q3) enhances the Schwinger effect by lowering and narrowing the potential barrier,while increasing spatial anisotropy(controlled by v) suppresses the process by raising and widening the barrier.These findings demonstrate that magnetic and spatial anisotropies exert competing effects on particle production,emphasizing the necessity of treating both concurrently in holographic models.This work advances the theoretical description of the Schwinger effect in anisotropic environments,with implications for understanding non-equilibrium dynamics in HIC and other strongly coupled systems.

【关键词】 AdS/CFTSchwinger effectanisotropy
【Key words】 AdS/CFTSchwinger effectanisotropy
【基金】 supported in part by the National Key Research and Development Program of China (2022YFA1604900);partial support from the National Natural Science Foundation of China (NSFC)(12435009, 12275104);supported by the Ph.D. Research Startup Project at Hubei Minzu University (RZ2500000857)
  • 【文献出处】 Chinese Physics C ,中国物理C(英文) , 编辑部邮箱 ,2026年05期
  • 【分类号】O572
节点文献中: