Dataset for "Cavity-based optical switching via phase modulation in rubidium warm vapor"
This dataset contains the data that describes an optical switch using a ring cavity filled with rubidium vapour. The all-optical control is provided by a controlled phase shift interaction by a strong control field on a weak signal field detuned from the near-degenerate two-photon absorption ladder in warm rubidium vapor. The signal field is routed through a doubly resonant ring cavity in which the phase shift selects either the transmitted or reflected output port.
Cite this dataset as:
Booton, G.,
Wasawo, T.,
Davis, W.,
McGarry, C.,
Rusimova, K.,
Davis, A.,
Nunn, J.,
Mosley, P.,
2026.
Dataset for "Cavity-based optical switching via phase modulation in rubidium warm vapor".
Bath: University of Bath Research Data Archive.
Available from: https://doi.org/10.15125/BATH-01582.
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Data
rawdata_zip.zip
application/zip (146MB)
Creative Commons: Attribution 4.0
Creators
Georgia Booton
University of Bath
Tabijah Wasawo
University of Bath
William Davis
Macquarie University
Cameron McGarry
University of Sydney
Kristina Rusimova
University of Bath
Alex Davis
University of Bath
Josh Nunn
University of Bath
Peter Mosley
University of Bath
Contributors
University of Bath
Rights Holder
Documentation
Data collection method:
The signal field was generated by a 780 nm external cavity diode laser (ECDL, MOGLabs CEL), which was blue detuned from the $5S_{1/2}(F'=2)$ feature. The control field was generated by a 776 nm ECDL (MOGLabs CEL) and was intensity modulated by an electro-optic modulator (Exail NIR-MPX800), and then amplified (MOGLabs MOAL) to produce a square control pulse of approximately 25 mW peak power and down to 42 ns pulse duration. Each laser was frequency stabilized using a scanning transfer cavity. The relative position of the signal and control field resonances are measured and then an error signal was generated from a RedPitaya locking system. The cavity consists of two beamsplitters and two mirrors, with an atomic vapor cell placed inside. The atomic medium is isotropically enriched rubidium-87 vapor, and is placed inside the ring cavity. The vapor is contained within a 5 cm glass cell with anti-reflection coatings, heated to approximately 60$^\circ$C to increase the optical depth whilst minimizing atomic absorption. A lens inside the cavity focuses the signal and control to the centre of the atomic vapor cell. The signal and control light is coupled into the fundamental transverse cavity mode, such that sharp resonances are seen on an oscilloscope. When the control field is applied, the signal field undergoes a phase shift, and is switched from the transmitted to reflected port. The reflected signal travels back on the control arm of the experiment and is detected after a circulator, and the transmitted light exits the cavity on the second port and is detected in free-space.
Funders
United States Air Force Office of Scientific Research
https://doi.org/10.13039/100000181
Two-photon absorption in fiber-integrated resonators for single-photon sources and quantum gates
FA8655-22-1-7024
Publication details
Publication date: 11 May 2026
by: University of Bath
Version: 1
DOI: https://doi.org/10.15125/BATH-01582
URL for this record: https://researchdata.bath.ac.uk/1582
Related papers and books
Booton, G., Wasawo, T., Davis, W. O. C., McGarry, C., Rusimova, K. R., Davis, A. O. C., Nunn, J., and Mosley, P. J., 2025. Cavity-based optical switching via phase modulation in warm rubidium vapor. Version 2. arXiv. Available from: https://doi.org/10.48550/ARXIV.2508.06255.
Contact information
Please contact the Research Data Service in the first instance for all matters concerning this item.
Contact person: Georgia Booton
Faculty of Science
Physics
Research Centres & Institutes
Centre for Photonics and Photonic Materials