The Paschen-Back effect occurs in the presence of a very strong magnetic field, where the Zeeman splitting energy becomes much larger than the fine-structure (spin-orbit) interaction energy. In this regime, the coupling between orbital ([latex]\vec{L}[/latex]) and spin ([latex]\vec{S}[/latex]) angular momentum is broken. They precess independently around the strong external magnetic field, simplifying the spectral pattern.
Paschen-Back Effect
- Friedrich Paschen
- Ernst Back
The Paschen-Back effect represents the high-field limit of the Zeeman effect. While the anomalous Zeeman effect describes the case where the external field is a small perturbation compared to the internal spin-orbit coupling, the Paschen-Back effect describes the opposite scenario. When the magnetic field is sufficiently strong, the interaction energy of the magnetic moments with the external field, [乳胶]\hat{H}_Z[/latex], dominates over the spin-orbit interaction Hamiltonian, [latex]\hat{H}_{SO}[/latex].
As a result, [latex]\vec{L}[/latex] and [latex]\vec{S}[/latex] are effectively decoupled. The ‘good’ quantum numbers are no longer J and [latex]m_J[/latex], but rather [latex]m_L[/latex] and [latex]m_S[/latex], which describe the independent projections of orbital and spin angular momentum along the magnetic field axis. The first-order energy shift is then given by the sum of the independent interactions: [latex]\Delta E = (m_L + g_s m_S)\mu_B B[/latex]. With [latex]g_s \approx 2[/latex], this leads to a splitting pattern that closely resembles the normal Zeeman triplet, although the fine-structure interaction, now treated as a small perturbation, causes each of these lines to have a small residual substructure. The transition from the anomalous Zeeman regime to the Paschen-Back regime is continuous and can be calculated using intermediate-field theories.
类型
中断
使用方法
前体
- the Zeeman effect in weak fields
- the theory of fine structure and spin-orbit coupling
- the availability of techniques to generate strong magnetic fields, such as the Weiss electromagnet
- advances in high-resolution 光谱学
应用
- spectroscopy of astrophysical objects with immense magnetic fields (e.g., neutron stars, white dwarfs)
- research in high-field physics laboratories using superconducting magnets
- understanding atomic structure in extreme physical conditions
- testing quantum electrodynamics (qed) in the strong-field limit
- diagnostics for high-density plasmas
专利:
迎接新挑战
机械工程师、项目、工艺工程师或研发经理
可在短时间内接受新的挑战。
通过 LinkedIn 联系我
塑料金属电子集成、成本设计、GMP、人体工程学、中高容量设备和耗材、精益制造、受监管行业、CE 和 FDA、CAD、Solidworks、精益西格玛黑带、医疗 ISO 13485
相关发明、创新和技术原理