大学物理 ›› 2026, Vol. 45 ›› Issue (6): 21-.doi: 10.16854/j.cnki.1000-0712.250427

• 教学讨论 • 上一篇    下一篇

磁光克尔与法拉第效应的基础理论

杨平,何伟岩,韩彬,冯万祥   

  1. 1. 天津仁爱学院物理教学部,天津 301636;2. 北京理工大学物理学院,北京 100081
  • 出版日期:2026-08-01 发布日期:2026-08-26
  • 通讯作者: 冯万祥,北京理工大学教授,E-mail:wxfeng@bit.edu.cn
  • 作者简介:杨平(1992—),男,天津人,天津仁爱学院师,博士,主要从事磁光效应理论与磁性材料计算研究


  • 基金资助:
    国家自然科学基金(12274027,W2511003);教育部高等学校物理专业课程教学研究项目(JZW-24-JW-01);北京市高等教育学会课题(MS2024299);天津仁爱学院教学改革研究课题(SJG2510)资助

Fundamental theories of magneto-optical Kerr and Faraday effects

YANG Ping 1,2,HE Weiyan1,HAN Bin1,FENG Wanxiang2   

  1. 1. Department of Physics, TianjinRenai College, Tianjin 301636, China; 
    2. School of Physics, Beijing Institute of Technology, Beijing 100081, China
  • Online:2026-08-01 Published:2026-08-26

摘要: 磁光效应在磁性材料研究中展现出日益突出的科学意义与技术应用前景.然而,由于其理论体系较为复杂,常难以在传统光学、电磁学和计算物理等课程中深入讲解,导致学生在学习过程中普遍面临物理图像不清晰、数学推导困难等问题.本文从菲涅尔方程出发,系统构建了从材料磁圆二色性到克尔角与法拉第角的完整理论框架,并结合磁畴成像与光隔离器等典型应用场景,将抽象理论与实际案例有机融合,为本科生深入理解磁光效应提供了兼具理论深度与实践价值的教学参考.


关键词: 磁光, 偏振, 克尔效应, 法拉第效应

Abstract: The magneto-optical effect has demonstrated increasing scientific significance and technological potential in the study of magnetic materials. However, due to the complexity of its theoretical framework, it is often difficult to cover in depth within standard courses such as optics, electromagnetism, and computational physics. As a result, students frequently encounter challenges such as unclear physical intuition and complicated mathematical derivations. Starting from the Fresnel equations, this paper systematically constructs a complete theoretical framework linking magnetic circular dichroism in materials to the expressions of Kerr and Faraday rotation angles. By integrating typical application scenarios such as magnetic domain imaging and optical isolators, the abstract theory is organically connected to practical cases, providing undergraduate students with a teaching reference that combines theoretical depth and practical relevance for a deeper understanding of magneto-optical effects.

Key words: magneto-optical, polarization, Kerr effect, Faraday effect