Ferromagnetic Traps for Quasi-Continuous Operation of Optical Nanofiber Interfaces
Ruijuan Liu, Jinggu Wu, Yuan Jiang, Yanting Zhao, and Saijun Wu

TL;DR
This paper introduces ferromagnetic traps that enable quasi-continuous, field-free operation of optical nanofiber interfaces for cold atom experiments, with improved magnetic field uniformity and potential for advanced quantum optical applications.
Contribution
It presents a novel ferromagnetic trap design that provides stable, tunable magnetic fields for optical nanofiber interfaces, enabling continuous operation without switching off magnetic fields.
Findings
Achieved quasi-continuous, field-free operation of ONF interfaces.
Verified elimination of residual magnetic fields in an n=4 assembly.
Demonstrated potential for enhanced quantum optical interactions.
Abstract
A soft ferromagnetic plate uniformizes Tesla-level fields generated by attached permanent magnets, producing a smooth and electronically tunable surface field on the opposite side. By arranging precisely fabricated rectangular plates, a nearly ideal magnetic quadrupole field with a substantial gradient can be created at center. This robust and rapidly tunable field configuration is well suited for two-dimensional magneto-optical trapping (2D-MOT) and magnetic guiding of cold atoms. By aligning an optical nanofiber (ONF) along the zero-field line of a planar 2D-MOT in a 2-plate assembly, we demonstrate quasi-continuous, field-free operation of the quantum optical interface without switching off the magnetic field. Transient transmission spectroscopy with nanosecond laser pulses is performed on the Rb D2 line at a measurement repetition rate as high as 250 kHz. The observed…
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Taxonomy
TopicsOrbital Angular Momentum in Optics · Photonic and Optical Devices · Semiconductor Lasers and Optical Devices
