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Oscillating Nuclear Charge Radii as Sensors for Ultralight Dark Matter
Abhishek Banerjee1, Dmitry Budker2,3,4, Melina Filzinger5
1Weizmann Institute of Science, Department of Particle Physics and Astrophysics, Rehovot 761001, Israel.
None:
We show that coupling of ultralight dark matter (UDM) to quarks and gluons would lead to an oscillation of the nuclear charge radius for both the quantum chromodynamic (QCD) axion and scalar dark matter, an effect which is of particular importance for heavy elements. Consequently, the resulting oscillation of electronic energy levels could be resolved with optical atomic clocks, and their comparisons can be used to investigate UDM nuclear couplings, which were previously only accessible with other platforms. We demonstrate this idea using the ^{2}S_{1/2}(F=0)↔^{2}F_{7/2}(F=3) electric octupole and ^{2}S_{1/2}(F=0)↔^{2}D_{3/2}(F=2) electric quadrupole transitions in ^{171}Yb^{+}. Based on the derived sensitivity coefficients for these two transitions and a long-term comparison of their frequencies using a single trapped ^{171}Yb^{+} ion, we find bounds on the scalar UDM-nuclear couplings and the QCD axion decay constant. These results are at a similar level compared to the tightest spectroscopic limits, and future investigations, also with other optical clocks, promise significant improvements.
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