A high-precision segmented Paul trap with minimized micromotion for an optical multiple-ion clock
We present a new setup to sympathetically cool 115 In + ions with 172 Yb + for optical clock spectroscopy. A first prototype ion trap made of glass-reinforced thermoset laminates was built, based on a design that minimizes axial micromotion and offers full control of the ion dynamics in all three di...
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Veröffentlicht in: | Applied physics. B, Lasers and optics Lasers and optics, 2014, Vol.114 (1-2), p.231-241 |
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Hauptverfasser: | , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | We present a new setup to sympathetically cool
115
In
+
ions with
172
Yb
+
for optical clock spectroscopy. A first prototype ion trap made of glass-reinforced thermoset laminates was built, based on a design that minimizes axial micromotion and offers full control of the ion dynamics in all three dimensions. We detail the trap manufacturing process and the characterization of micromotion in this trap. A calibration of the photon-correlation spectroscopy technique demonstrates a resolution of 1.1 nm in motional amplitude of our measurements. With this method, we demonstrate a sensitivity to systematic clock shifts due to excess micromotion of
|
(
Δ
ν
/
ν
)
mm
|
=
7.7
×
10
−
20
along the direction of the spectroscopy laser beam. Owing to our on-board filter electronics on the ion trap chips, no rf phase shifts could be resolved at this level. We measured rf fields over a range of 400 μm along the ion trap axis and demonstrated a region of 70 μm where an optical frequency standard with a fractional inaccuracy of ≤1 × 10
−18
due to micromotion can be operated. |
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ISSN: | 0946-2171 1432-0649 |
DOI: | 10.1007/s00340-013-5580-5 |