DocumentCode :
17664
Title :
The Microloop-Gap Resonator: A Novel Miniaturized Microwave Cavity for Double-Resonance Rubidium Atomic Clocks
Author :
Violetti, Maddalena ; Pellaton, Matthieu ; Affolderbach, Christoph ; Merli, Francesco ; Zurcher, Jean-Francois ; Mileti, Gaetano ; Skrivervik, Anja K.
Author_Institution :
Lab. d´Electromagn. et d´Acoust., Ecole Polytech. Fed. de Lausanne, Lausanne, Switzerland
Volume :
14
Issue :
9
fYear :
2014
fDate :
Sept. 2014
Firstpage :
3193
Lastpage :
3200
Abstract :
Nowadays mobile and battery-powered applications push the need for radically miniaturized and low-power frequency standards that surpass the stability achievable with quartz oscillators. For the miniaturization of double-resonance rubidium (87Rb) atomic clocks, the size reduction of the microwave cavity or resonator (MWR) to well below the wavelength of the atomic transition (6.835 GHz for 87Rb) is of high interest. Here, we present a novel miniaturized MWR, the μ-LGR, for use in a miniature DR atomic clock and designed to apply a well-defined microwave field to a microfabricated Rb cell that provides the reference signal for the clock. This μ-LGR consists of a loop-gap resonator-based cavity with very compact dimensions (<;0.9 cm3). The μ-LGR meets the requirements of the application and its fabrication and assembly can be performed using repeatable and low-cost techniques. The concept of the proposed device was proven through simulations, and prototypes were successfully tested. Experimental spectroscopic evaluation shows that the μ-LGR is well-suited for use in an atomic clock. In particular, a clock short-term stability of 7 × 10-12τ-1/2 was measured, which is better than for other clocks using microfabricated cells and competitive with stabilities of compact Rb clocks using conventional glass-blown cells.
Keywords :
atomic clocks; cavity resonators; frequency stability; frequency standards; microassembling; microcavities; microfabrication; micromechanical resonators; microwave measurement; microwave resonators; rubidium; μ-LGR; MWR; Rb; assembly; clock short-term stability; double-resonance rubidium atomic clock; frequency 6.835 GHz; glass-blown cell; loop-gap resonator-based cavity; low-power frequency standard; microfabricated cell; microloop-gap resonator; miniature DR atomic clock; miniaturized microwave cavity; mobile battery-powered application; quartz oscillator; size reduction; spectroscopic evaluation; Atomic clocks; Cavity resonators; Electrodes; Prototypes; Resonant frequency; Tuning; Microwave devices; atomic measurements; frequency control; metrology; microwave measurements; spectroscopy;
fLanguage :
English
Journal_Title :
Sensors Journal, IEEE
Publisher :
ieee
ISSN :
1530-437X
Type :
jour
DOI :
10.1109/JSEN.2014.2326337
Filename :
6819777
Link To Document :
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