NIST F1 and F2
Thomas P. Heavner, T.E. Parker, J.H. Shirley, Paul D. Kunz, Steven R. Jefferts
Abstract
Thomas P. Heavner, T.E. Parker, J.H. Shirley, Paul D. Kunz, Steven R. Jefferts
Abstract
Abstract : The National Institute of Standards and Technology operates a cesium fountain primary frequency standard, NIST-F1, which has been contributing to International Atomic Time (TAI) since 1999. During the intervening 11 years, we have improved NIST-F1 so that the uncertainty is currently delta integral/integral(sub 0) approximately 3x10(exp -16), dominated by uncertainty in the blackbody-radiation-induced frequency shift. In order to circumvent the uncertainty associated with the blackbody shift, we have built a new fountain, NIST-F2, in which the microwave interrogation region is cryogenic (80 K), reducing the blackbody shift to negligible levels. We briefly describe here the series of improvements to NIST-F1 that have allowed its uncertainty to reach the low 10-16 level and present early results from NIST-F2.
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Abstract : The National Institute of Standards and Technology operates a cesium fountain primary frequency standard, NIST-F1, which has been contributing to International Atomic Time (TAI) since 1999. During the intervening 11 years, we have improved NIST-F1 so that the uncertainty is currently delta integral/integral(sub 0) approximately 3x10(exp -16), dominated by uncertainty in the blackbody-radiation-induced frequency shift. In order to circumvent the uncertainty associated with the blackbody shift, we have built a new fountain, NIST-F2, in which the microwave interrogation region is cryogenic (80 K), reducing the blackbody shift to negligible levels. We briefly describe here the series of improvements to NIST-F1 that have allowed its uncertainty to reach the low 10-16 level and present early results from NIST-F2.
Key concepts: NIST, Black-body radiation, Fountain, Frequency standard, Atomic clock, Physics, Radiation, Computer science