Microwave spectroscopy of the cold rubidium (n+1)d5/2→ng and nh transitions

© 2016 American Physical Society. We present an experimental technique that allows us to determine the zero-field intervals between high- states of Rb in a magneto-optical trap, in spite of the fact that we can only control the stray electric field in one direction. The technique is based on measuri...

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Main Authors: Jeonghun Lee, J. Nunkaew, T. F. Gallagher
Format: Journal
Published: 2018
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/56301
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Institution: Chiang Mai University
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spelling th-cmuir.6653943832-563012018-09-05T03:13:36Z Microwave spectroscopy of the cold rubidium (n+1)d5/2→ng and nh transitions Jeonghun Lee J. Nunkaew T. F. Gallagher Physics and Astronomy © 2016 American Physical Society. We present an experimental technique that allows us to determine the zero-field intervals between high- states of Rb in a magneto-optical trap, in spite of the fact that we can only control the stray electric field in one direction. The technique is based on measuring a property of the atom that depends on the field, as opposed to its square. This approach allows the determination of the zero-field intervals and the magnitude of the stray field in the uncontrolled perpendicular direction. We use this technique to observe the microwave transitions of rubidium from the (n+1)d5/2 states to the ng and nh states of 27≤n≤30. From the observed microwave transitions, we determine the quantum defects of the ng and nh states. Using the quantum defects of the ng and nh states and the adiabatic core polarization theory, we determine the Rb+ ionic dipole and quadrupole polarizabilities to be αd=9.12(2)a03 and αq=14(3)a05, respectively. 2018-09-05T03:13:36Z 2018-09-05T03:13:36Z 2016-08-10 Journal 24699934 24699926 2-s2.0-84983297327 10.1103/PhysRevA.94.022505 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84983297327&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/56301
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Physics and Astronomy
spellingShingle Physics and Astronomy
Jeonghun Lee
J. Nunkaew
T. F. Gallagher
Microwave spectroscopy of the cold rubidium (n+1)d5/2→ng and nh transitions
description © 2016 American Physical Society. We present an experimental technique that allows us to determine the zero-field intervals between high- states of Rb in a magneto-optical trap, in spite of the fact that we can only control the stray electric field in one direction. The technique is based on measuring a property of the atom that depends on the field, as opposed to its square. This approach allows the determination of the zero-field intervals and the magnitude of the stray field in the uncontrolled perpendicular direction. We use this technique to observe the microwave transitions of rubidium from the (n+1)d5/2 states to the ng and nh states of 27≤n≤30. From the observed microwave transitions, we determine the quantum defects of the ng and nh states. Using the quantum defects of the ng and nh states and the adiabatic core polarization theory, we determine the Rb+ ionic dipole and quadrupole polarizabilities to be αd=9.12(2)a03 and αq=14(3)a05, respectively.
format Journal
author Jeonghun Lee
J. Nunkaew
T. F. Gallagher
author_facet Jeonghun Lee
J. Nunkaew
T. F. Gallagher
author_sort Jeonghun Lee
title Microwave spectroscopy of the cold rubidium (n+1)d5/2→ng and nh transitions
title_short Microwave spectroscopy of the cold rubidium (n+1)d5/2→ng and nh transitions
title_full Microwave spectroscopy of the cold rubidium (n+1)d5/2→ng and nh transitions
title_fullStr Microwave spectroscopy of the cold rubidium (n+1)d5/2→ng and nh transitions
title_full_unstemmed Microwave spectroscopy of the cold rubidium (n+1)d5/2→ng and nh transitions
title_sort microwave spectroscopy of the cold rubidium (n+1)d5/2→ng and nh transitions
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84983297327&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/56301
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