Indirect measurement of atomic magneto-optical rotation via Hilbert transform
arXiv:2403.00950 · doi:10.1088/1361-6455/ad5e24
Abstract
The Kramers-Kronig relations are a pivotal foundation of linear optics and atomic physics, embedding a physical connection between the real and imaginary components of any causal response function. A mathematically equivalent, but simpler, approach instead utilises the Hilbert transform. In a previous study, the Hilbert transform was applied to absorption spectra in order to infer the sole refractive index of an atomic medium in the absence of an external magnetic field. The presence of a magnetic field causes the medium to become birefringent and dichroic, and therefore it is instead characterised by two refractive indices. In this study, we apply the same Hilbert transform technique to independently measure both refractive indices of a birefringent atomic medium, leading to an indirect measurement of atomic magneto-optical rotation. Key to this measurement is the insight that inputting specific light polarisations into an atomic medium induces absorption associated with only one of the refractive indices. We show this is true in two configurations, commonly referred to in literature as the Faraday and Voigt geometries, which differ by the magnetic field orientation with respect to the light wavevector. For both cases, we measure the two refractive indices independently for a Rb thermal vapour in a 0.6 T magnetic field, finding excellent agreement with theory. This study further emphasises the application of the Hilbert transform to the field of quantum and atomic optics in the linear regime.
11 pages, 4 figures, submitted to Journal of Physics B
References in corpus (19)
- Absolute absorption on the rubidium D lines: comparison between theory and experiment
- Electron-phonon Coupling on the Surface of the Topological Insulator Bi2Se3: Determined from Surface Phonon Dispersion Measurements
- ElecSus: A program to calculate the electric susceptibility of an atomic ensemble
- Wide-bandwidth, tunable, multiple-pulse-width optical delays using slow light in cesium vapor
- An optical isolator using an atomic vapor in the hyperfine Paschen-Back regime
- Use of X-ray scattering functions in Kramers-Kronig analysis of reflectance
- Maximal refraction and superluminal propagation in a gaseous nanolayer
- Slow-light Faraday effect: an atomic probe with gigahertz bandwidth
- ElecSus: Extension to arbitrary geometry magneto-optics
- The Hilbert transform: Applications to atomic spectra
- Off-resonance absorption and dispersion in a Doppler-broadened medium
- Optical Memory in a Microfabricated Rubidium Vapor Cell
- Optical spectroscopy of a microsized Rb vapour sample in magnetic fields up to 58 tesla
- Better magneto-optical filters with cascaded vapor cells in the Faraday-Faraday and Faraday-Voigt geometries
- Wide range linear magnetometer based on a sub-microsized K vapor cell
- Precision Measurement of the Excited State Landé g-factor and Diamagnetic Shift of the Cesium D Line
- How to Build an Optical Filter with an Atomic Vapor Cell
- Electromagnetically Induced Transparency and Optical Pumping in the Hyperfine Paschen-Back Regime
- Voigt transmission windows in optically thick atomic vapours: a method to create single-peaked line centre filters