期刊文献+

Analysis of the blackbody-radiation shift in an ytterbium optical lattice clock

Analysis of the blackbody-radiation shift in an ytterbium optical lattice clock
下载PDF
导出
摘要 We accurately evaluate the blackbody-radiation shift in a171 Yb optical lattice clock by utilizing temperature measurement and numerical simulation. In this work. three main radiation sources are considered for the blackbody-radiation shift, including the heated atomic oven, the warm vacuum chamber, and the room-temperature vacuum windows. The temperatures on the outer surface of the vacuum chamber are measured during the clock operation period by utilizing seven calibrated temperature sensors. Then we infer the temperature distribution inside the vacuum chamber by numerical simulation according to the measured temperatures. Furthermore, we simulate the temperature variation around the cold atoms while the environmental temperature is fluctuating. Finally, we obtain that the total blackbody-radiation shift is -1.289(7)Hz with an uncertainty of 1.25×10;for our;Yb optical lattice clock. The presented method is quite suitable for accurately evaluating the blackbody-radiation shift of the optical lattice clock in the case of lacking the sensors inside the vacuum chamber. We accurately evaluate the blackbody-radiation shift in a171 Yb optical lattice clock by utilizing temperature measurement and numerical simulation. In this work. three main radiation sources are considered for the blackbody-radiation shift, including the heated atomic oven, the warm vacuum chamber, and the room-temperature vacuum windows. The temperatures on the outer surface of the vacuum chamber are measured during the clock operation period by utilizing seven calibrated temperature sensors. Then we infer the temperature distribution inside the vacuum chamber by numerical simulation according to the measured temperatures. Furthermore, we simulate the temperature variation around the cold atoms while the environmental temperature is fluctuating. Finally, we obtain that the total blackbody-radiation shift is -1.289(7)Hz with an uncertainty of 1.25×10^(-17) for our ^(171)Yb optical lattice clock. The presented method is quite suitable for accurately evaluating the blackbody-radiation shift of the optical lattice clock in the case of lacking the sensors inside the vacuum chamber.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2016年第10期119-127,共9页 中国物理B(英文版)
基金 supported by the National Key Basic Research and Development Program of China(Grant No.2012CB821302) the National Natural Science Foundation of China(Grant No.11134003) the National High Technology Research and Development Program of China(Grant No.2014AA123401) the Shanghai Excellent Academic Leaders Program of China(Grant No.12XD1402400)
关键词 optical lattices blackbody radiation shift temperature measurement finite element analysis optical lattices blackbody radiation shift temperature measurement finite element analysis
  • 相关文献

参考文献1

二级参考文献49

  • 1Bureau International des Poids et Mesures The Interna- tional System of Units (SI) (8th ed.) p113.
  • 2Wang Z 13, Zhao L, Wang S G, et al. 2014 Sci. China- Phys. Mech. Astron. 57 1788.
  • 3Li H J, Tang G F, He F, et al. 2013 Sci. China-Phys. Mech. Astron. 56 1591.
  • 4Ramsey N F 1950 Phys. Rev. 78 695.
  • 5Dick C J 1987 Proc. 19th Precise Time and Time Inter- val (PTTI) Applications and Planning Metting Redondo Beach, USA, 1987 p133.
  • 6Gu@na J, Rosenbusch P, Laurent P, et al. 2012 IEEE Trans. Ultrason. Ferroelectr. Freq. Control 57 647.
  • 7Gerginov T V, Nemitz N, Griebsch D, Kazda M, Li R, Gibble K, Wynands R, Weyers S 2010 24th European Frequency and Time Forum Noordwijk, Netherlands, 13-16 April, 2010 p222.
  • 8吴长江,阮军,陈江,张辉,张首刚,2013,物理学报,62063201.
  • 9Chambon D, Lours M, Chapelet F, Bize S, Tobar M E, Clairon A, Santarelli G 2007 IEEE Trans. Ultrason. Ferr. 54 729.
  • 10Lipphardt B, Grosche G, Sterr U, Tamm C, Weyers S, Schnatz H 2009 IEEE Trans. Instram. Meas. 58 1258.

共引文献7

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部