AC Zeeman effect in microfabricated surface traps

Author:

Ivory M.1ORCID,Nordquist C. D.1ORCID,Young K.1ORCID,Hogle C. W.1,Clark S. M.1ORCID,Revelle M. C.1ORCID

Affiliation:

1. Sandia National Laboratories , Albuquerque, New Mexico 87185, USA

Abstract

Quantum processors and atomic clocks based on trapped ions often utilize an ion’s hyperfine transition as the qubit state or frequency reference, respectively. These states are a good choice because they are insensitive in first order to magnetic field fluctuations, leading to long coherence times and stable frequency splittings. In trapped ions, however, these states are still subject to the second order AC Zeeman effect due to the necessary presence of an oscillating magnetic field used to confine the ions in a Paul trap configuration. Here, we measure the frequency shift of the 2S1/2 hyperfine transition of a 171Yb+ ion caused by the radio frequency (RF) electromagnetic field used to create confinement in several microfabricated surface trap designs. By comparing different trap designs, we show that two key design modifications significantly reduce the AC Zeeman effect experienced by the ion: (1) an RF ground layer routed directly below the entire RF electrode, and (2) a symmetric RF electrode. Both of these changes lead to better cancellation of the AC magnetic field and, thus, overall reduced frequency shifts due to the AC Zeeman effect and reduced variation across the device. These improvements enable a more homogeneous environment for quantum computing and can reduce errors for precision applications such as atomic clocks.

Funder

Intelligence Advanced Research Projects Activity

Advanced Scientific Computing Research

Publisher

AIP Publishing

Reference28 articles.

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