Title :
Optical frequency standards and measurements
Author :
Hollberg, Leo ; Oates, Chris W. ; Curtis, E. Anne ; Ivanov, Eugene N. ; Diddams, Scott A. ; Udem, Thomas ; Robinson, Hugh G. ; Bergquist, James C. ; Rafac, Robert J. ; Itano, Wayne M. ; Drullinger, Robert E. ; Wineland, David J.
Author_Institution :
Nat. Inst. of Stand. & Technol., Boulder, CO, USA
Abstract :
We describe the performance characteristics and frequency measurements of two high-accuracy high-stability laser-cooled atomic frequency standards. One is a 657-nm (456-THz) reference using magneto-optically trapped Ca atoms, and the other is a 282-nm (1064-THz) reference based on a single Hg/sup +/ ion confined in an RF-Paul trap. A femtosecond mode-locked laser combined with a nonlinear microstructure fiber produces a broad and stable comb of optical modes that is used to measure the frequencies of the reference lasers locked to the atomic standards. The measurement system is referenced to the primary frequency standard NIST F-1, a Cs atomic fountain clock. Both optical standards demonstrate exceptional short-term instability (/spl ap/5/spl times/10/sup -15/ at 1 s), as well as excellent reproducibility over time. In light of our expectations for the future of optical frequency standards, we consider the present performance of the femtosecond optical frequency comb, along with its limitations and future requirements.
Keywords :
calcium; frequency standards; high-speed optical techniques; laser cooling; laser mode locking; magneto-optical effects; stability; 1 s; 1064 THz; 282 nm; 456 THz; 657 nm; Ca; Cs atomic fountain clock; Hg/sup +/; RF-Paul trap; atomic standards; broad stable comb; femtosecond mode-locked laser; femtosecond optical frequency comb; frequency measurements; high-accuracy high-stability laser cooled atomic frequency standards; magneto-optically trapped Ca atoms; nonlinear microstructure fiber; optical frequency measurements; optical frequency standards; optical modes; optical standards; primary frequency standard; reference lasers; short-term instability; single Hg+ ion; Atom lasers; Atom optics; Atomic measurements; Fiber lasers; Fiber nonlinear optics; Frequency measurement; Laser mode locking; Measurement standards; Nonlinear optics; Ultrafast optics;
Journal_Title :
Quantum Electronics, IEEE Journal of