Schwindt Peter D D, Jau Yuan-Yu, Partner Heather, Casias Adrian, Wagner Adrian R, Moorman Matthew, Manginell Ronald P, Kellogg James R, Prestage John D
Sandia National Laboratories, Albuquerque, New Mexico 87185, USA.
Jet Propulsion Laboratory, Pasadena, California 91109, USA.
Rev Sci Instrum. 2016 May;87(5):053112. doi: 10.1063/1.4948739.
We report on the development of a highly miniaturized vacuum package for use in an atomic clock utilizing trapped ytterbium-171 ions. The vacuum package is approximately 1 cm(3) in size and contains a linear quadrupole RF Paul ion trap, miniature neutral Yb sources, and a non-evaporable getter pump. We describe the fabrication process for making the Yb sources and assembling the vacuum package. To prepare the vacuum package for ion trapping, it was evacuated, baked at a high temperature, and then back filled with a helium buffer gas. Once appropriate vacuum conditions were achieved in the package, it was sealed with a copper pinch-off and was subsequently pumped only by the non-evaporable getter. We demonstrated ion trapping in this vacuum package and the operation of an atomic clock, stabilizing a local oscillator to the 12.6 GHz hyperfine transition of (171)Y b(+). The fractional frequency stability of the clock was measured to be 2 × 10(-11)/τ(1/2).
我们报告了一种用于囚禁镱 - 171离子的原子钟的高度小型化真空封装的研制情况。该真空封装尺寸约为1立方厘米,包含一个线性四极射频保罗离子阱、微型中性镱源和一个非蒸散型吸气剂泵。我们描述了制作镱源和组装真空封装的制造过程。为了使真空封装准备好进行离子囚禁,先将其抽真空、高温烘烤,然后再充入氦缓冲气体。一旦在封装内达到合适的真空条件,就用铜夹断密封,随后仅由非蒸散型吸气剂进行抽气。我们展示了在这个真空封装中进行的离子囚禁以及原子钟的运行,将一个本地振荡器稳定到(171)Yb⁺的12.6千兆赫超精细跃迁上。测得该时钟的分数频率稳定性为2×10⁻¹¹/τ¹/₂ 。