SearcharxivSearch

arXiv subjects

Yu-Hao Guo

Publications and source records attributed to Yu-Hao Guo.

2 recordsLinked to original sources

Nuclear Zeeman Effect on Heading Errors and the Suppression in Atomic Magnetometers

The heading error has been known to be caused mainly by the nonlinear Zeeman effect and the orientation-dependent light shift. In this work, we find that the nuclear Zeeman effect can also have a significant impact on the heading errors, especially for continuously-driving magnetometers with unresolved magnetic transitions. It not only shifts the precession frequency but deforms the heading errors and causes asymmetry: the heading errors for pump lasers with opposite helicities are different. The heading error also depends on the relative direction (parallel or vertical) of the probe laser to the RF driving magnetic field. Thus, one can design the configuration of the magnetometer and make it work in the smaller-heading-error regime. To suppress the heading error, our studies suggest to sum up the output precession frequencies from atomic cells pumped by two lasers with opposite helicities and probed by lasers propagating in orthogonal directions (one parallel and another perpendicular to the RF field), instead of utilizing probe lasers propagating in the same directions. Due to the nuclear Zeeman effect, the average precession frequencies in the latter case can have a non-negligible angular dependence, while in the former case the nuclear-Zeeman-effect induced heading error can be largely compensated and the residue is within 1Hz. Furthermore, for practical use, we propose to simply utilize a small magnetic field parallel/antiparallel to the pump laser. By tuning the magnitude of this auxiliary field, the heading error can be flattened around different angles, which can improve the accuracy when the magnetometer works around a certain orientation angle.

quant-ph

Reduction of frequency-dependent light shifts in light-narrowing regimes: A study using effective master equations

Alkali-metal-vapor magnetometers, using coherent precession of polarized atomic spins for magnetic field measurement, have become one of the most sensitive magnetic field detectors. Their application areas range from practical uses such as detections of NMR signals to fundamental physics research such as searches for permanent electric dipole moments. One of the main noise sources of atomic magnetometers comes from the light shift that depends on the frequency of the pump laser. In this work, we theoretically study the light shift, taking into account the relaxation due to the optical pumping and the collision between alkali atoms and between alkali atoms and the buffer gas. Starting from a full master equation containing both the ground and excited states, we adiabatically eliminate the excited states and obtain an effective master equation in the ground-state subspace that shows an intuitive picture and dramatically accelerates the numerical simulation. Solving this effective master equation, we find that in the light-narrowing regime, where the line width is reduced while the coherent precession signal is enhanced, the frequency-dependence of the light shift is largely reduced, which agrees with experimental observations in cesium magnetometers. Since this effective master equation is general and is easily solved, it can be applied to an extensive parameter regime, and also to study other physical problems in alkali-metal-vapor magnetometers, such as heading errors.

quant-ph