DocumentCode
186059
Title
Miniature microwave frequency standard with trapped 171Yb+
Author
Jau Yuan-Yu ; Schwindt, Peter D. D. ; Casias, Adrian ; Serkland, Darwin ; Manginell, Ron ; Moorman, Mathew ; Boye, Robert ; Ison, Aaron ; Winrow, Ted ; McCants, Andrew ; Prestage, John ; Nan Yu ; Kellogg, James ; Boschen, Dan ; Kosvin, Igor
Author_Institution
Sandia Nat. Labs., Albuquerque, NM, USA
fYear
2014
fDate
19-22 May 2014
Firstpage
1
Lastpage
1
Abstract
We report the development of a low-power, miniature Yb-171 ion clock at Sandia National Laboratories. This work is funded by the DARPA micro Position, Navigation, and Timing program under the Integrated Micro Primary Atomic Clock Technology (IMPACT) project. The ultimate goal is to develop a frequency standard that has frequency stability comparable to a commercial Cs beam standard, but with 100 to 1000 times smaller size and power consumption. The Yb-171 ion has a microwave clock traItem MIN : YXB4-01335-A112nsition at 12.6 GHz, and the natural linewidth of the clock resonance is expected to be less than 10-3 Hz, which leads to a very high-Q clock resonance. An atomic clock using trapped ions is an excellent candidate for miniaturization because ions are well isolated from the environment independently of the size of the trap. Compared to optical traps for neutral atoms, the trapping depth of RF traps for ions is usually several orders of magnitude deeper. Therefore, the requirement for the vacuum level is more forgiving. We have successfully developed miniature ion-trap vacuum packages as shown in Fig. 1. Usually, a few microTorr of He buffer gas is introduced into each of our miniature ion-trap vacuum packages, which are sealed and passively pumped by non-evaporable getters. Using a sealed 3 cc ion-trap package, we were able to demonstrate long-term clock operation, with the stability reaching the 10-14 range after a few days of integration [1].
Keywords
atomic clocks; frequency stability; frequency standards; helium; microwave measurement; optical pumping; packaging; particle traps; radiation pressure; resonance; spectral line breadth; ytterbium; 171Yb+; DARPA; IMPACT program; RF trapping; buffer gas; frequency 12.6 GHz; frequency stability; high-Q clock resonance; integrated micro primary atomic clock technology; ion clock; micro position navigation and timing program; microwave clock transition; miniature ion-trap vacuum package; miniature microwave frequency standard; natural linewidth; neutral atoms; nonevaporable getter; optical trap; passive pumping; sealing; vacuum level requirement; Atomic clocks; Charge carrier processes; Ions; Laboratories; Signal detection; Standards;
fLanguage
English
Publisher
ieee
Conference_Titel
Frequency Control Symposium (FCS), 2014 IEEE International
Conference_Location
Taipei
Type
conf
DOI
10.1109/FCS.2014.6860001
Filename
6860001
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