DocumentCode
1428372
Title
A new trapped ion atomic clock based on 201Hg+
Author
Burt, Eric A. ; Taghavi-Larigani, Shervin ; Tjoelker, Robert L.
Author_Institution
Jet Propulsion Lab., California Inst. of Technol., Pasadena, CA, USA
Volume
57
Issue
3
fYear
2010
fDate
3/1/2010 12:00:00 AM
Firstpage
629
Lastpage
635
Abstract
High-resolution spectroscopy has been performed on the ground-state hyperfine transitions in trapped 201Hg+ ions as part of a program to investigate the viability of 201Hg+ for clock applications. Part of the spectroscopy work was directed at magnetic-field-sensitive hyperfine lines with ??mF =0, which allow accurate Doppler-free measurement of the magnetic field experienced by the trapped ions. Although it is possible to measure Doppler-free magnetic-field-sensitive transitions in the commonly used clock isotope, 199Hg+, it is more difficult. In this paper, we discuss how this 201Hg+ feature may be exploited to produce a more stable clock or one requiring less magnetic shielding in environments with magnetic field fluctuations far in excess of what is normally found in the laboratory. We have also determined that in discharge-lamp-based trapped mercury ion clocks, the optical pumping time for 201Hg+ is about 3 times shorter than that of 199Hg+ This can be used to reduce dead time in the interrogation cycle for these types of clocks, thereby reducing the impact of local oscillator noise aliasing effects.
Keywords
atom optics; atomic clocks; discharge lamps; ground states; hyperfine structure; isotopes; mercury (metal); optical pumping; particle traps; positive ions; radiative lifetimes; dead time; discharge-lamp-based trapped mercury ion clocks; ground-state hyperfine transitions; high-resolution spectroscopy; interrogation cycle; local oscillator noise aliasing effects; magnetic field Doppler-free measurement; magnetic field fluctuations; magnetic shielding; optical pumping time; trapped 201Hg+ ions; trapped ion atomic clock; Atomic clocks; Charge carrier processes; Fluctuations; Isotopes; Local oscillators; Magnetic field measurement; Magnetic shielding; Mercury (metals); Optical pumping; Spectroscopy;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2010.1458
Filename
5422506
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