Title :
CPT Cesium-Cell Atomic Clock Operation With a 12-mW Frequency Synthesizer ASIC
Author :
Yazhou Zhao ; Tanner, Steve ; Casagrande, Arnaud ; Affolderbach, Christoph ; Schneller, Luc ; Mileti, Gaetano ; Farine, P.-A.
Author_Institution :
Electron. & Signal Process. Lab., Ecole Polytech. Fed. de Lausanne, Neuchatel, Switzerland
Abstract :
In this paper, we present the design, fabrication, and electrical characterization of a low-power microwave source for interrogation of cesium atomic hyperfine transition frequency using the coherent population trapping (CPT) technique. The 4.6-GHz frequency generation and signal buffering is performed by a single-chip frequency synthesizer ASIC with a frequency tuning resolution of 1 x 10-13 and a programmable RF output power from -10 to 0 dBm. The circuit was used to modulate the current of a vertical-cavity surface-emitting laser through a dedicated impedance matching network and low thermal conductivity transmission line. Strong modulation sidebands with >60% of carrier amplitude were obtained with an ASIC power consumption of 12 mW. The system was used as optical source for atomic interrogation in an experimental cesium CPT clock. The measured clock stability of 5 x 10-11 at τ = 1 s, going down to 4.5 x 10-12 at τ = 200 s, is limited by the signal-to-noise ratio of the detected CPT signal.
Keywords :
application specific integrated circuits; atomic clocks; caesium; frequency synthesizers; high-frequency transmission lines; laser cavity resonators; surface emitting lasers; CPT cesium-cell atomic clock operation; Cs; atomic interrogation; carrier amplitude; cesium atomic hyperfine transition frequency; clock stability; coherent population trapping technique; frequency generation; frequency tuning resolution; impedance matching network; low thermal conductivity transmission line; low-power microwave source; modulation sidebands; power 12 mW; power consumption; programmable RF output power; signal buffering; signal-to-noise ratio; single-chip frequency synthesizer ASIC; time 1 s to 200 s; vertical-cavity surface-emitting laser; Application specific integrated circuits; Atomic clocks; Frequency modulation; Frequency synthesizers; Phase noise; Radio frequency; Vertical cavity surface emitting lasers; Atomic clocks; cesium; frequency synthesizers; microwave circuits; phase locked loops (PLLs); phase locked loops (PLLs).;
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
DOI :
10.1109/TIM.2014.2329383