First accuracy evaluation of NIST-F2
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Jon H. Shirley | Filippo Levi | Neil Ashby | Steven R. Jefferts | Thomas E. Parker | Thomas P. Heavner | Stephan E. Barlow | Elizabeth A. Donley | Giovanni Antonio Costanzo | N. Ashby | S. Barlow | J. Shirley | E. Donley | F. Levi | T. Parker | G. Costanzo | S. Jefferts | T. Heavner
[1] F. Levi,et al. On the power dependence of extraneous microwave fields in atomic frequency standards , 2005, Proceedings of the 2005 IEEE International Frequency Control Symposium and Exposition, 2005..
[2] T. Walker,et al. Spin-exchange optical pumping of noble-gas nuclei , 1997 .
[3] Frequency shifts in NIST Cs Primary Frequency Standards due To Transverse RF Field Gradients , 2014, 1404.4101.
[4] Jon H. Shirley,et al. Accuracy evaluation of NIST-F1 , 2002 .
[5] P S Julienne,et al. Collisional frequency shifts in 133Cs fountain clocks. , 2001, Physical review letters.
[6] F. Witteborn,et al. Apparatus for measuring the force of gravity on freely falling electrons , 1977 .
[7] P. Rosenbusch,et al. Switching atomic fountain clock microwave interrogation signal and high-resolution phase measurements , 2009, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[9] G. Dick,et al. Power dependence of distributed cavity phase-induced frequency biases in atomic fountain frequency standards , 2005, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[10] A. DeMarchi,et al. NIST cesium fountain microwave cavities , 1998, Proceedings of the 1998 IEEE International Frequency Control Symposium (Cat. No.98CH36165).
[11] R. Wynands,et al. Effects of microwave leakage in caesium clocks: Theoretical and experimental results , 2006, Proceedings of the 20th European Frequency and Time Forum.
[12] F. Levi,et al. A new microwave synthesis chain for the primary frequency standard NIST-F1 , 2005, Proceedings of the 2005 IEEE International Frequency Control Symposium and Exposition, 2005..
[13] K. Beloy,et al. High-accuracy calculation of the blackbody radiation shift in the 133Cs primary frequency standard. , 2006, Physical review letters.
[14] M de Podesta,et al. Acoustic gas thermometry , 2014 .
[15] Dai-Hyuk Yu,et al. Power dependence of the frequency bias caused by spurious components in the microwave spectrum in atomic fountains , 2006, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[16] André Clairon,et al. Cavity frequency pulling in cold atom fountains , 2001, IEEE Trans. Instrum. Meas..
[17] Kurt Gibble. Difference between a photon's momentum and an atom's recoil. , 2006 .
[18] V. Dzuba,et al. Frequency shift of the cesium clock transition due to blackbody radiation. , 2006, Physical review letters.
[19] E. Donley,et al. The cryogenic fountain ITCsF2 , 2009, 2009 IEEE International Frequency Control Symposium Joint with the 22nd European Frequency and Time forum.
[20] Dai-Hyuk Yu,et al. Microwave leakage-induced frequency shifts in the primary frequency Standards NIST-F1 and IEN-CSF1 , 2006, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[21] K. Stock,et al. Aspects of quality assurance in monitoring solar UV irradiance , 2003 .
[22] Spatial variations of field polarization and phase in microwave cavities: application to the cesium fountain cavity , 1996, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[23] C. W. Beer,et al. Hyperfine pressure shift of 133 Cs atoms in noble and molecular buffer gases , 1976 .
[24] Andreas Bauch,et al. Frequency shifts in a cesium atomic clock due to Majorana transitions , 1993 .
[25] Filippo Levi,et al. Double-pass acousto-optic modulator system , 2005 .
[26] Kurt Gibble,et al. Phase variations in microwave cavities for atomic clocks , 2004 .
[27] Jon H. Shirley,et al. NIST-F1: recent improvements and accuracy evaluations , 2005 .
[28] K. Gibble,et al. Distributed cavity phase frequency shifts of the caesium fountain PTB-CSF2 , 2011, 1110.2590.
[29] Robert Wynands,et al. Majorana transitions in an atomic fountain clock , 2006, Proceedings of the 20th European Frequency and Time Forum.
[30] J. Vanier,et al. The quantum physics of atomic frequency standards , 1989 .
[31] Jon H. Shirley,et al. NIST F1 and F2 , 2009 .
[32] J. Guéna,et al. Progress in atomic fountains at LNE-SYRTE , 2012, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[33] R. Wynands,et al. Atomic fountain clocks , 2005 .
[34] E. Donley,et al. Laser cooling and launching performance in a (1,1,1)-geometry atomic fountain , 2005, Proceedings of the 2005 IEEE International Frequency Control Symposium and Exposition, 2005..
[35] Steven R. Jefferts,et al. Operation of the NIST-F1 caesium fountain primary frequency standard with a maser ensemble, including the impact of frequency transfer noise , 2005 .
[36] N. Ashby,et al. High-accuracy measurement of the blackbody radiation frequency shift of the ground-state hyperfine transition in 133Cs. , 2014, Physical review letters.
[37] Robert E. Drullinger,et al. Accuracy evaluation of the primary frequency standard NIST-7 , 2001 .
[38] J. Guéna,et al. Evaluation of Doppler shifts to improve the accuracy of primary atomic fountain clocks. , 2011, Physical review letters.
[39] Robin P. Giffard,et al. Frequency pulling by hyperfine σ transitions in cesium beam atomic frequency standards , 1991 .
[40] Kurt Gibble,et al. Evaluating and minimizing distributed cavity phase errors in atomic clocks , 2010, 1008.1505.
[41] Ruoxin Li,et al. Improved accuracy of the NPL-CsF2 primary frequency standard: evaluation of distributed cavity phase and microwave lensing frequency shifts , 2011, 1107.2412.
[42] Marc A. Weiss,et al. The relativistic redshift with 3×10−17 uncertainty at NIST, Boulder, Colorado, USA , 2003 .